• <tr id="yyy80"></tr>
  • <sup id="yyy80"></sup>
  • <tfoot id="yyy80"><noscript id="yyy80"></noscript></tfoot>
  • 99热精品在线国产_美女午夜性视频免费_国产精品国产高清国产av_av欧美777_自拍偷自拍亚洲精品老妇_亚洲熟女精品中文字幕_www日本黄色视频网_国产精品野战在线观看 ?

    Single molecular insight into steric effect on C-terminal amino acids with various hydrogen bonding sites

    2022-11-05 06:47:52YunzhiXieChunhuLiuLinxiuChengYulnFnHuifngLiWeiLiuLeiZhuXunLiKeDengQingdoZengShoufHn
    Chinese Chemical Letters 2022年10期

    Yunzhi Xie,Chunhu Liu,Linxiu Cheng,Yuln Fn,Huifng Li,Wei Liu,Lei Zhu,Xun Li,Ke Deng,Qingdo Zeng,Shouf Hn,*

    a State Key Laboratory for Physical Chemistry of Solid Surfaces,Department of Chemical Biology,College of Chemistry and Chemical Engineering,The Key Laboratory for Chemical Biology of Fujian Province,The MOE Key Laboratory of Spectrochemical Analysis &Instrumentation,and Innovation Center for Cell Signaling Network,Xiamen University,Xiamen 361005,China

    b Jiangxi Provincial Key Laboratory of Low-Carbon Solid Waste Recycling,School of Geography and Environmental Engineering,Gannan Normal University,Ganzhou 341000,China

    c Jiangxi Key Laboratory of Organo-Pharmaceutical Chemistry,Chemistry and Chemical Engineering College,Gannan Normal University,Ganzhou 341000,China

    d CAS Key Laboratory of Standardization and Measurement for Nanotechnology,CAS Center for Excellence in Nanoscience,National Center for Nanoscience and Technology (NCNST),Beijing 100190,China

    Keywords:C-terminal amino acids Steric effect Bonding site Scanning tunneling microscopy DFT calculations

    ABSTRACT Amino acids are basic units to construct a protein with the assistance of various interactions.During this building process,steric hindrance derived from amino acid side groups or side chains is a factor that could not be ignored.In this contribution,adsorption behaviors of C-terminal amino acid derivatives with amino acid residues fused in 3,4,9,10-perylenetetracarboxylic dianhydride were investigated by scanning tunneling microscopy (STM) and density functional theory (DFT) calculations at various liquid/solid interfaces.STM results at 1-phenyloctane/HOPG interface show that N,N’-3,4,9,10-perylenedicarboximide(GP) and N,N’-methyl-3,4,9,10-perylenedicarboximide (AP) formed linear and herringbone structures,respectively.The driving force could be attributed to different H-bonding sites induced by steric hindrance at side groups.N,N’-Benzyl-3,4,9,10-perylenedicarboximide (PP) generates both linear and herringbone structures because steric hindrance changes the H-bonding sites between PP molecules,whereas N,N’-isopropyl-3,4,9,10-perylenedicarboximide (LP) failed to be imaged because of strong steric hindrance coming from larger side group.To further investigate the impact of steric hindrance,we utilized octanoic acid (OA) as solvent to capture the adsorption details of LP and PP.We found that OA molecules drag PP and LP molecules in a different direction to generate linear structure,impeding the molecular rotation.The structure-solvent relationship shows that the steric hindrance is brought by the large side group,which makes it easier to recognize OA molecules at the interface.These results demonstrate that steric effect plays a significant role in altering interaction sites of the compounds during the adsorption process at the liquid/solid interface.

    As one of the most important constituents of living organisms,amino acids play a vital role in the living process.Amino acids are perfect for building thousands of structure-specific and different functional peptides or proteinsviaintermolecular interactions[1-4]such as electrostatic,hydrogen-bonding,hydrophobic,π-πinteraction,and other interactions [5-7].For example,various interactions mentioned above are involved in the formation of secondary structures of protein,such asα-helix andβ-sheet,of which steric hindrance [8-10]from amino acid side groups or side chains plays an important role during this building process.However,the influence and mechanism of steric hindrance are not quite clear.Therefore,establishing a research model about the adsorption of amino acids on surface both theoretically and experimentally is the first and vital step [11]to understand steric hindrance effect,and explore the relationship between molecular interactions and the function of peptides or proteins.

    However,the challenge is how to immobilize amino acids on surface under ambient conditions and maintain stability.To overcome the adsorption barriers,perylene core with flatπsystems[12,13]is introduced to fix amino acids on graphite throughππinteraction between perylene core and graphite.This perylene core is aπ-πconjugated organic semiconductor named 3,4,9,10-perylenetetracarboxylic dianhydride (PTCDA).PTCDA has been proved to be an excellent model system to investigate the growth process of organic thin films at different surface of substrates [14-21].Additionally,the derivatives of PTCDA have also been demonstrated to possess features of functional diversity [22].PTCDA is prone to disperse and adsorb on the substrate to generate herringbone structure with the assistance of H-bonding and interfacial interactions,hence the introduction of PTCDA into our system is a superior idea to uncover the steric hindrance effect of amino acids.

    Scanning tunneling microscopy (STM) [23-32]has turned out to be extremely useful analytical technology to probe adsorption behaviors of amino acids on surface.STM with high spatial and electronic resolution has advantage over visualizing two-dimensional assembled structure and surface electronic structures [33-35].It has been utilized to investigate chemical reactions,conformation,and properties of self-assembled materials [36].Hence,STM is considered to be an effective means in the field of surface and nanoscale science [37-44].

    In this work,we adopt a well-established synthetic strategy not only based on a series of C-amino acids (Gly,Ala,Leu-and Phe),but introducing a strongπ-πconjugated 3,4,9,10-perylenetetracarboxylic dianhydride (PTCDA) core,to prepare Cterminal amino acid derivatives and further explore the steric effect of C-terminal amino acid residues on two-dimensional (2D)surface at ambient conditions.

    In this work,Gly,Ala,Leu,and Phe-functionalized PTCDA compounds were investigated: GP,AP,LP and PP.The amino acid derivatives were synthesized according to supporting information.Chemical structures of these compounds are shown in Scheme 1.Prior studies showed that the preferential alignment of organic semiconductor compound PTCDA was herringbone structure with two molecules per unit cell when vapored on HOPG substrate [45].The arrangement of PTCDA does not depend on the lattice constant of the substrate but apt to slightly misalign from a symmetry axis to reduce strain [45].

    Scheme 1.Chemical structures of N,N’-R-3,4,9,10-perylenedicarboximide (GP,AP,LP and PP).

    Fig.1.(a) Large-scale STM images of GP molecules at 1-phenyloctane/HOPG interface,the imaging parameter is 50.9 nm×50.9 nm,Iset=708.0 pA,Vbias=749.8 mV.(b) High-resolution STM image (10.6 nm×10.6 nm,Iset=708.0 pA,Vbias=749.8 mV).(c) Corresponding model of GP assembly structures.(d) Hydrogen bonding interactions between GP molecules,which are marked by black rectangles.STM images of AP at 1-phenyloctane/HOPG: (e) (50.3 nm×50.3 nm,Iset=487.1 pA,Vbias=639.5 mV) showing large-scale STM image.(f) High-resolution STM image(12.6 nm×12.6 nm,Iset=487.1 pA,Vbias=697.3 mV).(g) Suggested model of AP assembly structures.(h) Hydrogen bonding interactions between AP molecules,which are marked by black rectangle.

    From the chemical structures exhibited in Scheme 1,amino acids (Gly,Ala,Leu-and Phe) were fused intoπ-πconjugated PTCDA core at the N-terminal position of amino acids to investigate steric effect of C-terminal amino acid residues on surface at ambient conditions.The only structural difference for these compounds exists in the C-terminal R groups.To probe the influence of steric effect from the C-terminal-R groups,we investigated the adsorption behaviors of these amino acid derivatives at two liquid/HOPG interfaces—1-phenyloctane/HOPG interface and octanoic acid (OA)/HOPG interfaceviaSTM imaging and DFT calculations.We initially explored adsorption behaviors of these four derivatives (GP,AP,LP and PP) at the 1-phenyloctane/HOPG interface.The results show that GP,AP and PP could self-assemble into ordered structures while LP failed to form a monolayer.According to DFT calculations,the calculated unit cell parameter for simulated structures agrees well with the parameter measured from highresolution images (Table 1).GP molecule with the simplest side group constructs a large condensed linear structure (Fig.1a).According to the molecular dimension of GP from the high-resolution image displayed in Fig.1b,we find that one bright spot represents one GP molecule.These molecules self-assemble into periodic paralleled arrangement with the unit cell parameter measured to bea=1.3±0.1 nm,b=1.4±0.1 nm,andα=71° ± 1.0° (Fig.1b).The driving forces involved in this linear structure are two kinds of hydrogen-bonding interactions existing in Ar-H···O-Ar between adjacent GP molecules (Fig.1c).These two types of H-bonds with an average bond length of 3.53 ?A are named H-1 and H-2 (marked by a black rectangle in Fig.1d).The H-bonding energies for H-1 and H-2 are-4.232 kcal/mol and-4.481 kcal/mol (Table S2 in Supporting information).

    Though these H-bonds are weak,every molecule connects with four adjacent molecules,with the driving force born at two sides of the molecule keeping balance.The side group is too tiny to induce steric effect thereby the terminal-COOH of GP molecules fails to generate H-bonding interactions with adjacent molecules in the absorption process,and consequently lead to the formation of ordered linear structure.The occurrence of linear structure is the consequence of releasing the stress induced by GP molecules to the binding sites of the HOPG surface,differing from that of PTCDA.

    When the side group is replaced by methyl,surprisingly,a long-range-ordered herringbone structure is observed at the 1-phenyloctane/HOPG interface (Fig.1e).According to the unit cell marked in Fig.1f,the parameters are measured to bea=2.3±0.1 nm,b=1.3±0.1 nm,andα=87° ± 1.0° The arrangement of this close-packed array composed of AP molecules is different from that of GP arrays.As shown in Fig.1g,the neighboring arrays show slight rotation compared with the linear structure of GP.Two kinds of hydrogen-bonding interactions are involved in the herringbone structure with the bonding sites appearing at Ar-H···O-Ar between adjacent AP molecules.The H-bonding energies of these two categories of H-bonds with a bond length of~3.48 ?A are-8.629 kcal/mol (H-1) and-6.595 kcal/mol (H-2),respectively (Fig.1h and Table S2).Comparing with the H-bonding sites of GP linear structure,the disparate H-bonding sites of AP herringbone structure imply that larger side group methyl induces steric hindrance.The appearance of methyl groups leads to the rotation of AP molecule to connect with neighboring molecules in the same array to form Ar-H···O-Ar H-bonds,whereas the adjoining AP array rotates in opposite direction to interact with adjacent AP molecules in the same array,leading to the formation of herringbone structure.Therefore,the participation of methyl groups changes the H-bonding sites,breaks the original balance analogous to that of the GP configuration,and establishes a new equilibrium.As a result,AP molecules assemble into a herringbone structure of which the morphology is identical to the structure of PTCDA.

    Table 1.Experimental (Expt.) and calculated (Calcd.) lattice parameters for assembly structures on HOPG.

    Fig.2.STM images for PP-1 and PP-2 structures at 1-phenyloctane/HOPG: (a)Large-scale STM image of PP-1 in domain A (49.5 nm×49.5 nm,Iset=592.4 pA,Vbias=749.8 mV).(b) (16.5 nm×16.5 nm,Iset=592.4 pA,Vbias=749.8 mV) showing high-resolution STM image of the domain A.(c) The tentative 2D packing model.(d) Interactions between PP molecules,the detail is marked by rectangle and circle.STM images for PP-2 structure in domain B at 1-phenyloctane/HOPG: (e)49.5 nm×49.5 nm,Iset=592.4 pA,Vbias=749.8 mV,showing large-scale STM image.(f) 17.7 nm×17.7 nm,Iset=592.4 pA,Vbias=749.8 mV,showing high-resolution STM image.(g) The corresponding 2D packing model.(h) Interactions between PP molecules,the detail is marked by rectangle and circle (black rectangle for H-bond,black circle for π-π interactions).

    When the side group is isobutyl,the leucine functionalized compound LP fails to adsorb at 1-phenyloctane/HOPG interface.The failure of adsorption could be attributed to steric hindrance coming from the bulky isobutyl group.As the side group becomes large enough,steric effect is strong enough to prevent LP molecules from interacting with adjoining molecules to generate ordered nanostructure at the 1-phenyloctane/HOPG interface.

    Whereas the side group is replaced by benzyl group,two different morphologies—PP-1 (in domain A) and PP-2 (in domain B) are visualized in Fig.2.The difference between these two structures exists both in the packing pattern and packing density.The largescale STM image of the self-assembled adlayer of PP-1 (in domain A) is exhibited in Fig.2a.PP-1 is composed of alternately packed bright and dark strips with four bright spots surrounding a dark spot to construct a supercell.The dimension of unit cell which is marked by a black quadrangle is determined to bea=1.9±0.1 nm,b=1.5±0.1 nm,andα=84° ± 1.0° As shown in Fig.2c,the bright spots (Fig.2b) represent the PTCDA cores,whereas the dark spots representπ-stacked benzyl and phenyl groups.One dark spot contains three benzene rings with two benzyl groups coming from neighboring PP molecules and one phenyl group coming from the 1-phenyloctane molecule.This speculation is confirmed by the appearance of the STM image,characteristics of its orientation,physical dimension,and DFT calculation result.As exhibited in Fig.2d,hydrogen bonding interaction andπ-πstacking are involved in this structure.Molecules interact with neighboring molecules in the same string to generate-COOH···O-Ar-hydrogen-bonding interaction with bond length measured to be ~2.66 ?A (marked by a black rectangle in Fig.2d).Furthermore,molecules from adjacent strings interact with the phenyl group from 1-phenyloctane to generateπ-πinteraction.The energies of H-bonding andπ-πstacking are-19.087 kcal/mol and-12.077 kcal/mol,respectively (Tables S2 and S4 in Supporting information).

    The other kind of configuration (PP-2) in domain B is herringbone arrangement which is similar to the herringbone structure constituted by AP molecules.Large domains of periodically arranged strings with adjacent strings behaving slightly differently are observed from the large-scale image in Fig.2e.From highresolution image,details of the herringbone structure are captured after careful observation.As shown in Fig.2f,we find that every two strings with identical orientations are separated by one string with a different orientation.These two kinds of strings adopt alternative arrangements to obtain periodical herringbone structure with the unit cell parameter measured to bea=2.5±0.1 nm,b=2.25±0.1 nm,andα=79° ± 1.0° The supercell which is drawn out with a white quadrilateral is constructed by six molecules with four molecules keeping one orientation and another two molecules keeping other orientation (Fig.2g).Detail of the driving force for the herringbone structure could be acquired from the simulated structure.As shown in Fig.2h,various kinds of hydrogen bonding interactions andπ-πstacking interactions are involved in this structure.Molecules in one string interact with adjacent string to generate two kinds of hydrogen-bonds (H-1 and H-2)via-COOH···HOOC-H-bonding interactions with an average bond length calculated to be 2.50 ?A.The energies of these two types of double H-bonds are-40.946 kcal/mol and-42.251 kcal/mol,respectively (Table S2).Furthermore,π-πstacking interaction occurs between PP and 1-phenyloctane.On the one hand,PP connects with neighboring PP owing toπ-πinteraction between benzyl groups (π-2).On the other hand,PP interacts with 1-phenyloctane to formπ-πinteraction between benzyl and phenyl groups (π-1,π-3).The energies of these three categories ofππinteractions are-8.958 kcal/mol (π-1),-3.409 kcal/mol (π-2),and-6.367 kcal/mol (π-3),respectively (Table S4).New species of interactions—π-πinteractions are involved in the adsorption process of PP molecules.The related interactions and binding sites of these two types of morphologies constructed by PP molecules are different from the structures constituted by GP,AP and LP.The introduction of benzyl groups at the side group leads to the occurrence ofπ-πinteractions which enhance the stability of structures,albeit the side group is larger than LP.Comparing with AP,the benzyl group of PP could generateπ-πinteractions.Therefore,the H-bonding sites of PP linear and herringbone structure are distinctive from the H-bonding sites of AP herringbone structure,elucidating the larger side group benzyl groups assist the adsorption behaviors.

    Table 2.Total energy and energy per unit area for amino acid-functioned systems.a.

    The benzyl groups at the-R group site play two roles: steric effect andπ-πinteractions.On one hand,the bulky-R group may induce the rotation of PP molecules thereby changing the Hbonding sites of the molecules.On the other,the benzyl groups tend to interact with 1-phenyloctane and adjacent PP molecules.Combining these two factors,linear alignments and herringbone structures are observed during the adsorption process of PP.Owing to theπ-πinteractions,the competitive steric effect turns into an accelerative factor for PP molecules to generate highly ordered configurations.The herringbone structure is more stable than the linear structure with energy per unit area of the herringbone structure (-0.471 kcal mol-1?A-2) lower than the linear structure (-0.364 kcal mol-1?A-2) (Table 2),indicating the herringbone structure is the inherent advantageous structure for PP molecules.To some degree,the linear structure tends to turn into a herringbone structure.

    The adsorption behaviors of GP,AP and LP show that steric hindrance becomes obvious increasing when the-R group are hydrogen atom,methyl,and isopropyl.Nevertheless,as for PP,the steric effect becomes an advantageous factor because the-R group contains benzyl groups which could formπ-πinteractions with adjacent molecules.

    As LP fails to immobilize at the 1-phenyloctane/HOPG interface,and PP could assemble into both linear structure and herringbone structure,the influence of steric hindrance is unclear.To further investigate how steric hindrance affected the self-assembly process,we utilize octanoic acid (OA) as solvent to capture the adsorption details of these two compounds.According to the STM results,adsorption behaviors of LP and PP at OA/HOPG interface are inconsistent with those of these two compounds at the 1-phenyloctane/HOPG interface.As shown in Fig.3a,large-scale assembly structures constructed by LP molecules are visualized at OA/HOPG interface.Molecules assemble into linear packed geometry in Fig.3b as expected with the parameters yield to bea=1.7±0.1 nm,b=1.7±0.1 nm,andα=90° ± 1.0° The corresponding molecular model is exhibited in Figs.3c and d with the hydrogen-bonding interactions indwelling in carboxyl groups of LP and OA molecules.According to DFT calculations,the Hbonding energies for the linear-type configuration are calculated to be-43.952 kcal/mol and-43.628 kcal/mol (Table S2).The invasion of OA molecules into the system elucidates that the steric hindrance deeply influences the assembly behavior of LP compounds,resulting in enough space to trap and co-assemble with solvent molecules.It is speculated that the existence of steric hindrance changes the H-bonding sites of LP molecules,showing the tendency of molecular rotation of LP to fit the HOPG surface to generate herringbone structure.Whereas the participation of OA molecules impedes the rotation of LP by dragging LP from a different direction,resulting in the formation of linear structure.

    Fig.3.(a) Large-scale STM images of LP self-assembly structure at the OA/HOPG interface: 73.0 nm×73.0 nm,Iset=750.7 pA,Vbias=493.5 mV.(b) High-resolution STM image (12.3 nm×12.3 nm,Iset=750.7 pA,Vbias=493.5 mV).(e) STM images of PP assembly structure at OA/HOPG interface: 28.7 nm×28.7 nm,Iset=711.1 pA,Vbias=499.9 mV,showing large-scale STM image.(f) High-resolution STM image:11.0 nm×11.0 nm,Iset=711.1 pA,Vbias=499.9 mV.(c,g) show corresponding assembled model of LP and PP molecules,respectively.(d,h) Interactions for LP and PP assembly structures are marked by rectangle and circle,respectively (black rectangle for H-bond,black circle for π-π interactions).

    To further gain insight into the impact of substituted groups on hydrogen-bonding sites for the self-assembled structure,we investigated the adsorption of PP compound at OA/HOPG interface.Fig.3e exhibits a large domain of periodic molecular arrays constructed by densely packed molecules.According to the highresolution image (Fig.3f),the molecular arrays are constructed by bright spots and dark space with the parameters measured to bea=2.3±0.1 nm,b=1.3±0.1 nm,andα= 87° ± 1.0° On basis of the observation,model building and DFT calculation were carried out with the results showing that the calculated parameter is identical to the measured one (Table 1).From the simulated structure,we could acquire information about the driving force and interaction sites for this linear structure.As shown in Figs.3g and h,hydrogen bonding interactions andπ-πstacking interactions are vital in the molecular packing process and structural stability.The interaction between PP molecules from adjacent arrays could be attributed toπ-πstacking between benzyl groups (π) with the energy calculated to be-6.414 kcal/mol (Table S4).Furthermore,participation of OA leads to the formation of H-bonding interactionsvia-COOH···HOOC-between PP and OA with the average bond length calculated to be 2.46 ?A.The energies of these two Hbonds are-50.781 kcal/mol (H-1) and-46.899 kcal/mol (H-2),respectively (Table S2).The co-assembly of PP and OA exhibits that introduction of OA stabilizes the whole system with the combination of H-bonds andπ-πstacking,in which steric effect is a favorable factor for molecular arrangement.Similar to the co-assembly behavior of LP and OA molecules,the invasion of OA molecules into the system implies that the steric hindrance deeply affects the assembly behavior of PP,making enough space to trap and coassemble with solvent molecules.The occurrence of linear structure could be attributed to the steric effect and H-bonds coming from PP/OA system.It is speculated that steric hindrance changes the H-bonding sites of PP molecules,leading to molecular rotation of PP molecules to construct herringbone structure.However,the participation of OA molecules drags PP molecules in a different direction,impeding the molecular rotation.Consequently,PP molecules co-assemble with OA molecules to generate a linear structure.

    Adsorption behaviors of C-terminal amino acid derivatives GP,AP,LP and PP were investigated at the 1-phenyloctane/HOPG and OA/HOPG interface.The above results indicate that side groups play significant roles in the adsorption process.Although GP and AP could form monolayers at the 1-phenyloctane/HOPG interface,the bonding sites of driving forces are disparate.Molecules in GP monolayers bond with four adjacent moleculesviaH-bonds with the bonding sites distributed in the molecular shoulders.However,molecules in AP monolayers could only interact with two adjacent moleculesviaH-bonds with the bonding sites locating at the molecular shoulders.The other two binding sites at the shoulder of the molecule fail to interact with adjacent molecules,which is due to the steric hindrance of methyl groups.In a word,the formation of herringbone structure is attributed to the steric effect from bulky methyl groups.GP and AP monolayers at 1-phenyloctane/HOPG interface exhibit their intrinsic binding sites because 1-phenyloctane fails to interfere in the formation of GP and AP monolayers.Interestingly,LP with isopropyl group which is larger than methyl group fails to generate herringbone structure.Two binding sites of LP are inclined to form H-bonds.Nevertheless,the other two biding sites at the shoulder of the LP molecule fail to interact with adjacent molecules because of the strong steric hindrance at the sopropyl group,failing to fix on the HOPG surface.Especially,PP with bulky side groups successfully self-assembles into two species of nanostructures,because 1-phenyloctane participates in the molecular assembly.The coassembly of 1-phenyloctane and PP molecules throughπ-πinteraction enhances the stability of the linear and herringbone structures.

    To further investigate the influence of steric hindrance on the molecular self-assembly process,we utilized octanoic acid as a solvent to capture the adsorption details of LP and PP.According to the high-resolution STM images,LP and PP both arrange into linear structures due to their larger C-terminal amino acid residues.This phenomenon elucidates that when the side group is larger,the bonding sites of driving forces have been changed,leading to the co-assembly of amino acid derivatives with OA molecules.The differentiation of the interaction sites suggests that steric effect deeply influences the adsorption behaviors of amino acid derivatives.It is speculated that steric hindrance could change the Hbonding sites of LP (PP),leading to molecular rotation of LP (PP).However,OA molecules are involved in the self-assembly behavior by generating H-bond LP (PP) in a different direction,preventing molecular rotation.Therefore,LP (PP) interacts with OA molecules to form a linear structure.

    In DFT calculations [46-48],molecule-molecule interactions and molecule-substrate are taken into consideration.Herein,only energy per unit area is discussed in this manuscript [49-52].The optimal structures are closely related to the molecule-substrate interactions,π-πinteraction,intermolecular hydrogen bonding interactions,and other interactions.Furthermore,steric hindrance deeply influences the intermolecular interactions,which leads to different assembly morphologies and energies per unit area.The energy per unit area of AP herringbone structure is lower than that of GP linear structure with the energies calculated to be-0.444 kcal mol-1?A-2(AP) and-0.325 kcal mol-1?A-2(GP),demonstrating that herringbone structure is more stable than linear structure(Table 2).The energy per unit area for PP compounds at the 1-phenyloctane/HOPG interface shows that the herringbone structure(PP-2,-0.471 kcal mol-1?A-2) is stable than the linear structure(PP-1,-0.364 kcal mol-1?A-2) (Table 2).These results illustrate that herringbone structure is more stable than linear structure thereby herringbone structure is the intrinsic and advantageous structure when adsorbed on HOPG surface.This phenomenon is identical to the adsorption behavior of the PTCDA core on HOPG surface.Due to the participation of OA,PP linear structure at OA/HOPG interface with the energy per unit area calculated to be-0.792 kcal mol-1?A-2,is more stable than structures (PP-1,PP-2) formed at the 1-phenyloctane/HOPG interface (Table 2).For the same reason,LP molecules (-0.637 kcal mol-1?A-2,Table 2) assemble into linear structures at OA/HOPG interface but fail to be imaged at 1-phenyloctane/HOPG interface.These situations elucidate that OA molecules could stabilize the adsorption system.

    Considering that the London dispersion interaction in van der Waals interaction,we have further performed DFT-D3 calculations for all the systems.Total energy and energy per unit area for amino acid-functioned systems,the hydrogen-bonding interactions andπ-πinteractions by DFT-D3 method are listed in Tables S1,S3,S5(Supporting information),respectively.It should be noted that because of the dispersion corrections,all the values are decreased.However,the relative trend of the DFT-D3 results is the same as the DFT results.

    In summary,we performed a systematic investigation on the steric effect of C-terminal amino acid derivatives GP,AP,LP and PP by STM and DFT calculations at the liquid/solid interface.2D supramolecular self-assembly structures were realized by adsorption of GP,AP,LP and PP at the 1-phenyloctane/HOPG and OA/HOPG interface.Depending on the different solvents utilized,the steric hindrance effects of amino acid residues were revealed utilizingin-situSTM.The results show that GP self-assembles into linear structure due to two categories of hydrogen-bonding interactions.AP arranges into herringbone structure based on hydrogen-bonding interaction which is controlled by steric effect from the methyl group.PP adopts linear and herringbone packing geometries at different solvent/HOPG interfaces since solvents are involved in the adsorption of PP molecules.LP with bulky side groups could form a linear structure with the assistance of OA molecules.As for GP and AP,the bonding sites of driving forces are disparate,albeit both of them could generate monolayers at the 1-phenyloctane/HOPG interface.The binding sites occur at the molecular shoulders with one GP molecule connecting with four adjacent moleculesviaH-bonding interactions.Owing to the steric hindrance of methyl groups,one molecule in the AP herringbone structure could interact with only two adjacent moleculesviaHbonds at the molecular shoulders,with the other two binding sites at the shoulder of the molecule failing to participate in the assembly.LP molecules with isopropyl groups larger than methyl groups are unable to immobilize at 1-phenyloctane/HOPG interface.Whereas the participation of OA leads to the formation of Hbonding interactions and alters the bonding sites of driving forces among LP molecules.Compared with that of LP,the molecular behavior of PP shows a slight difference since the benzyl groups participate in the assemblyvia π-πinteraction.The participation of 1-phenyloctane/OA into the PP system changes the interaction sites of PP molecules,resulting in the occurrences of different nanostructures.In a word,as the side group became bulky,the Hbonding sites from Ar-H···O-Ar turned to-COOH···O-Ar-,and finally transformed into-COOH···HOOC-.Furthermore,when enlarger the side group,the gap between molecules increases,leading to the transformation of H-bonding sites.Moreover,when the side group becomes bulkier,the solvent molecule could trap in the gap between molecules,leading to the construction of different structures.This phenomenon suggests that steric effect deeply influences the adsorption behaviors of amino acid derivatives.

    Declaration of competing interest

    The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

    Acknowledgments

    This work was supported by the Ministry of Science and Technology (No.2017YFA0205000),National Natural Science Foundation of China (Nos.21303024,21365003,21463003,51478123,21962003,21902033),the National Key Basic Research Program of China (No.2012CB933001) and the Chinese Academy of Sciences (No.YZ201318).The Jiangxi Provincial “Ganpo Talents 555 Projects”,Jiangxi Provincial Education Department Fund (No.KJLD13080),Jiangxi Provincial Funds for Distinguished Young Scientists (No.20153BCB23001),Jiangxi Provincial Project of Scientific and Technological Innovation Team (No.20152BCB24008),Jiangxi Province Youth Science Foundation Project (No.20192BAB216013),and Science and Technology Project of Jiangxi Province Education Department (No.180775) are also gratefully acknowledged.We thank Prof.Mingdong Dong for STM analysis.

    Supplementary materials

    Supplementary material associated with this article can be found,in the online version,at doi:10.1016/j.cclet.2021.12.056.

    久久精品国产自在天天线| 亚洲精华国产精华液的使用体验 | 99久久精品一区二区三区| 日韩精品中文字幕看吧| 黄片wwwwww| 亚洲内射少妇av| 一个人观看的视频www高清免费观看| 国产精品久久视频播放| 精品免费久久久久久久清纯| a级毛片免费高清观看在线播放| 俄罗斯特黄特色一大片| 亚洲av免费在线观看| 精品久久久久久久久亚洲| av天堂在线播放| 午夜影院日韩av| 午夜影院日韩av| 亚洲精品成人久久久久久| 日日啪夜夜撸| 国产精品福利在线免费观看| 搡老岳熟女国产| 美女黄网站色视频| 国产黄a三级三级三级人| 一级毛片电影观看 | 色尼玛亚洲综合影院| 日韩一区二区视频免费看| 网址你懂的国产日韩在线| 欧美日本亚洲视频在线播放| 观看美女的网站| 午夜激情福利司机影院| 联通29元200g的流量卡| 国产成人精品久久久久久| 国产蜜桃级精品一区二区三区| а√天堂www在线а√下载| 欧美丝袜亚洲另类| av专区在线播放| 亚洲中文字幕日韩| www.色视频.com| 中文字幕熟女人妻在线| 在线免费观看不下载黄p国产| 国内精品久久久久精免费| 人人妻人人澡人人爽人人夜夜 | 成年女人永久免费观看视频| av女优亚洲男人天堂| 久久久a久久爽久久v久久| 国产精品一区二区三区四区免费观看 | 国产精品av视频在线免费观看| 免费大片18禁| 午夜精品国产一区二区电影 | 波野结衣二区三区在线| 99久久中文字幕三级久久日本| 男女视频在线观看网站免费| 级片在线观看| 麻豆久久精品国产亚洲av| 久久久久久久久久黄片| 精品免费久久久久久久清纯| 禁无遮挡网站| 禁无遮挡网站| 非洲黑人性xxxx精品又粗又长| 毛片女人毛片| 亚洲国产精品成人综合色| 六月丁香七月| 一本一本综合久久| aaaaa片日本免费| 极品教师在线视频| 国产在视频线在精品| 联通29元200g的流量卡| 国产免费男女视频| 九九在线视频观看精品| 精品熟女少妇av免费看| 午夜福利在线在线| 久久这里只有精品中国| 国产国拍精品亚洲av在线观看| 成人午夜高清在线视频| 欧洲精品卡2卡3卡4卡5卡区| 欧美三级亚洲精品| 精品久久国产蜜桃| 欧美xxxx性猛交bbbb| 免费一级毛片在线播放高清视频| 最好的美女福利视频网| 久久久精品94久久精品| 亚洲高清免费不卡视频| 亚洲欧美日韩高清专用| 极品教师在线视频| 高清毛片免费看| 久久久精品94久久精品| 国产一区二区在线观看日韩| 久久精品国产自在天天线| 99久久中文字幕三级久久日本| 久久久精品94久久精品| 日本a在线网址| 禁无遮挡网站| 97超级碰碰碰精品色视频在线观看| 成人亚洲精品av一区二区| 99久久成人亚洲精品观看| 美女被艹到高潮喷水动态| 伦精品一区二区三区| 欧美三级亚洲精品| 午夜影院日韩av| 国产高清视频在线观看网站| 欧美成人a在线观看| 女的被弄到高潮叫床怎么办| 国产激情偷乱视频一区二区| 又粗又爽又猛毛片免费看| 国产一区二区激情短视频| 精品人妻熟女av久视频| 午夜视频国产福利| 18禁黄网站禁片免费观看直播| а√天堂www在线а√下载| 午夜精品国产一区二区电影 | av福利片在线观看| 变态另类丝袜制服| 非洲黑人性xxxx精品又粗又长| 国产亚洲精品av在线| 免费看a级黄色片| 少妇裸体淫交视频免费看高清| 啦啦啦啦在线视频资源| 日韩国内少妇激情av| 婷婷色综合大香蕉| 亚洲欧美清纯卡通| 日韩欧美在线乱码| 日本五十路高清| 99热只有精品国产| 丰满乱子伦码专区| 欧美xxxx黑人xx丫x性爽| 18禁裸乳无遮挡免费网站照片| 亚洲人与动物交配视频| 午夜福利成人在线免费观看| 亚洲三级黄色毛片| 内射极品少妇av片p| 精品一区二区三区视频在线观看免费| 亚洲真实伦在线观看| 国产精品一及| av在线天堂中文字幕| 亚洲av免费高清在线观看| 性欧美人与动物交配| 国产精品电影一区二区三区| 亚洲成人精品中文字幕电影| 狠狠狠狠99中文字幕| 高清毛片免费看| 你懂的网址亚洲精品在线观看 | 男人舔女人下体高潮全视频| 好男人在线观看高清免费视频| 国产精品野战在线观看| 久久精品久久久久久噜噜老黄 | 午夜亚洲福利在线播放| 精品午夜福利视频在线观看一区| 亚洲国产高清在线一区二区三| 哪里可以看免费的av片| 成人二区视频| 亚洲第一区二区三区不卡| 精品午夜福利在线看| 欧美xxxx性猛交bbbb| 特级一级黄色大片| 久久国产乱子免费精品| 一级毛片电影观看 | 亚洲精华国产精华液的使用体验 | 久久久久久大精品| 欧美国产日韩亚洲一区| 男人舔奶头视频| 日本免费a在线| 一卡2卡三卡四卡精品乱码亚洲| av天堂中文字幕网| 欧美性猛交黑人性爽| 久久久国产成人精品二区| 少妇高潮的动态图| 亚洲av成人av| 中出人妻视频一区二区| 小说图片视频综合网站| 国产一区二区三区在线臀色熟女| 国内久久婷婷六月综合欲色啪| 三级国产精品欧美在线观看| 久久久久久大精品| 级片在线观看| 午夜福利18| 久久韩国三级中文字幕| 国产激情偷乱视频一区二区| 婷婷六月久久综合丁香| 51国产日韩欧美| 特级一级黄色大片| 欧美精品国产亚洲| 国产精品久久电影中文字幕| 一进一出抽搐gif免费好疼| 欧美性猛交╳xxx乱大交人| 99热这里只有是精品在线观看| 18+在线观看网站| 亚洲精品国产成人久久av| 一个人免费在线观看电影| 久久九九热精品免费| 久久人人爽人人片av| 麻豆av噜噜一区二区三区| 观看免费一级毛片| 亚洲av中文字字幕乱码综合| 免费无遮挡裸体视频| 国产三级中文精品| 国产精品一及| 深爱激情五月婷婷| 久久精品夜色国产| 亚洲欧美日韩高清在线视频| 亚洲色图av天堂| 午夜影院日韩av| or卡值多少钱| 简卡轻食公司| 青春草视频在线免费观看| 夜夜爽天天搞| 欧美色欧美亚洲另类二区| 国产精品电影一区二区三区| 三级国产精品欧美在线观看| 亚州av有码| 最后的刺客免费高清国语| 亚洲图色成人| 亚洲三级黄色毛片| 18禁在线播放成人免费| 99国产极品粉嫩在线观看| 久久中文看片网| 少妇猛男粗大的猛烈进出视频 | 日产精品乱码卡一卡2卡三| 成人漫画全彩无遮挡| 国产日本99.免费观看| 五月玫瑰六月丁香| 全区人妻精品视频| 99在线人妻在线中文字幕| 在线免费十八禁| 国产亚洲精品综合一区在线观看| 亚洲av中文av极速乱| 超碰av人人做人人爽久久| 亚洲成a人片在线一区二区| 中国美白少妇内射xxxbb| 久久精品人妻少妇| 亚洲美女视频黄频| h日本视频在线播放| 又粗又爽又猛毛片免费看| 亚洲熟妇中文字幕五十中出| 高清毛片免费观看视频网站| 内地一区二区视频在线| 欧美激情久久久久久爽电影| 欧美日韩在线观看h| 在线观看美女被高潮喷水网站| 99热6这里只有精品| 成人一区二区视频在线观看| 国产视频一区二区在线看| 久久99热这里只有精品18| 在线观看午夜福利视频| av黄色大香蕉| 亚洲色图av天堂| www.色视频.com| 亚洲av免费高清在线观看| 婷婷色综合大香蕉| 久久综合国产亚洲精品| 一进一出抽搐动态| 国产在线男女| 亚洲av中文av极速乱| 露出奶头的视频| 老司机午夜福利在线观看视频| 日本熟妇午夜| 97碰自拍视频| 熟妇人妻久久中文字幕3abv| 日本-黄色视频高清免费观看| 一进一出好大好爽视频| 日韩欧美免费精品| 热99re8久久精品国产| 久久久精品大字幕| 亚洲一区二区三区色噜噜| 久久99热这里只有精品18| 99国产精品一区二区蜜桃av| 免费看日本二区| 日本熟妇午夜| avwww免费| 卡戴珊不雅视频在线播放| 欧美成人精品欧美一级黄| 亚洲,欧美,日韩| 国产精品福利在线免费观看| 天美传媒精品一区二区| 成人二区视频| 久久精品国产亚洲av涩爱 | 成人毛片a级毛片在线播放| 变态另类丝袜制服| 日本在线视频免费播放| 久久精品国产自在天天线| 国产中年淑女户外野战色| 九九在线视频观看精品| 一个人观看的视频www高清免费观看| 联通29元200g的流量卡| 99国产极品粉嫩在线观看| 日韩欧美在线乱码| 2021天堂中文幕一二区在线观| 亚洲国产精品成人综合色| 青春草视频在线免费观看| 日本与韩国留学比较| 男女视频在线观看网站免费| 精品国内亚洲2022精品成人| 午夜影院日韩av| 哪里可以看免费的av片| 午夜激情福利司机影院| 国内精品一区二区在线观看| 精品国产三级普通话版| 亚洲av熟女| 蜜桃久久精品国产亚洲av| 小说图片视频综合网站| 看非洲黑人一级黄片| 亚洲av中文av极速乱| 免费高清视频大片| 热99re8久久精品国产| 精品少妇黑人巨大在线播放 | 99久国产av精品| 亚洲经典国产精华液单| 久久久久久久久久黄片| 午夜激情欧美在线| 欧美激情久久久久久爽电影| 在线免费观看的www视频| 乱系列少妇在线播放| 婷婷亚洲欧美| 99热网站在线观看| 美女cb高潮喷水在线观看| 国产av麻豆久久久久久久| 久久精品91蜜桃| 成年女人永久免费观看视频| 热99re8久久精品国产| 可以在线观看毛片的网站| 精品人妻偷拍中文字幕| or卡值多少钱| 亚洲欧美精品综合久久99| 欧美最新免费一区二区三区| 国产精品国产三级国产av玫瑰| 日本一二三区视频观看| 国产 一区 欧美 日韩| 悠悠久久av| 亚洲性夜色夜夜综合| 午夜福利成人在线免费观看| 高清午夜精品一区二区三区 | 日韩制服骚丝袜av| 六月丁香七月| 国产精品野战在线观看| 精华霜和精华液先用哪个| 欧美色欧美亚洲另类二区| 天天躁夜夜躁狠狠久久av| 给我免费播放毛片高清在线观看| 在线天堂最新版资源| 一区二区三区免费毛片| 在线观看免费视频日本深夜| 国产精品久久视频播放| 女同久久另类99精品国产91| 成人无遮挡网站| 欧美不卡视频在线免费观看| 亚洲aⅴ乱码一区二区在线播放| 欧美绝顶高潮抽搐喷水| 天美传媒精品一区二区| 成人高潮视频无遮挡免费网站| 听说在线观看完整版免费高清| 成人精品一区二区免费| 激情 狠狠 欧美| 波多野结衣巨乳人妻| 女生性感内裤真人,穿戴方法视频| 国产色爽女视频免费观看| 亚洲精品日韩av片在线观看| 亚洲欧美日韩高清专用| 白带黄色成豆腐渣| 十八禁网站免费在线| 欧美丝袜亚洲另类| 成人特级黄色片久久久久久久| 亚洲最大成人av| 又爽又黄无遮挡网站| 你懂的网址亚洲精品在线观看 | 亚洲国产高清在线一区二区三| 国产一区二区三区在线臀色熟女| 丝袜喷水一区| 少妇被粗大猛烈的视频| 美女 人体艺术 gogo| 99久久九九国产精品国产免费| 久久人人爽人人爽人人片va| 一卡2卡三卡四卡精品乱码亚洲| 两个人的视频大全免费| 国产成人a∨麻豆精品| 中文字幕久久专区| 搡女人真爽免费视频火全软件 | 精品久久久久久久人妻蜜臀av| 身体一侧抽搐| 99久久精品一区二区三区| 天堂网av新在线| 精品一区二区三区人妻视频| 我要搜黄色片| 久久人妻av系列| 婷婷精品国产亚洲av在线| 中文资源天堂在线| 午夜影院日韩av| 日本欧美国产在线视频| 亚洲国产精品合色在线| АⅤ资源中文在线天堂| 一卡2卡三卡四卡精品乱码亚洲| 日韩一本色道免费dvd| 六月丁香七月| 国产伦在线观看视频一区| 黑人高潮一二区| 欧洲精品卡2卡3卡4卡5卡区| 国产三级中文精品| 中国美女看黄片| 欧美绝顶高潮抽搐喷水| 99国产精品一区二区蜜桃av| 小说图片视频综合网站| 1024手机看黄色片| 神马国产精品三级电影在线观看| 干丝袜人妻中文字幕| 91av网一区二区| 欧美成人精品欧美一级黄| 色噜噜av男人的天堂激情| 亚洲精品乱码久久久v下载方式| 国产精品久久久久久精品电影| 亚洲不卡免费看| 男人舔女人下体高潮全视频| 亚洲第一电影网av| 黑人高潮一二区| 欧美潮喷喷水| 99九九线精品视频在线观看视频| 日韩精品中文字幕看吧| 一本久久中文字幕| 一进一出抽搐gif免费好疼| 久久精品夜色国产| 午夜福利18| 欧美极品一区二区三区四区| 婷婷六月久久综合丁香| 男女那种视频在线观看| 亚洲av美国av| 中文字幕久久专区| 18禁在线播放成人免费| 三级经典国产精品| 99久久精品国产国产毛片| 色哟哟哟哟哟哟| 一进一出抽搐动态| 亚洲美女黄片视频| 国产精品伦人一区二区| 国产精品久久久久久精品电影| 99久久成人亚洲精品观看| 99久久中文字幕三级久久日本| 国产在线精品亚洲第一网站| 久久久久久国产a免费观看| 搡老熟女国产l中国老女人| 狠狠狠狠99中文字幕| av福利片在线观看| 亚洲国产精品成人久久小说 | 亚洲成人中文字幕在线播放| 久久久久久久久久久丰满| 亚州av有码| 免费一级毛片在线播放高清视频| 乱人视频在线观看| 免费看光身美女| 欧美xxxx黑人xx丫x性爽| 日本黄大片高清| 国产美女午夜福利| 美女大奶头视频| 亚洲精品乱码久久久v下载方式| 高清日韩中文字幕在线| 大又大粗又爽又黄少妇毛片口| 97在线视频观看| 中文资源天堂在线| 六月丁香七月| 国内精品美女久久久久久| 久久精品夜色国产| 美女免费视频网站| 又爽又黄a免费视频| 99在线人妻在线中文字幕| 看黄色毛片网站| 噜噜噜噜噜久久久久久91| 欧美+日韩+精品| 嫩草影院入口| 一区二区三区高清视频在线| 国产精品伦人一区二区| 亚洲一级一片aⅴ在线观看| 看片在线看免费视频| 免费大片18禁| 亚洲人成网站在线播放欧美日韩| 欧美xxxx性猛交bbbb| 精华霜和精华液先用哪个| 日韩欧美国产在线观看| 久久久a久久爽久久v久久| 国产成人福利小说| 亚洲最大成人中文| 给我免费播放毛片高清在线观看| av天堂在线播放| 亚洲久久久久久中文字幕| 天堂动漫精品| 欧美激情国产日韩精品一区| 午夜免费激情av| 日韩欧美 国产精品| 久久99热6这里只有精品| 草草在线视频免费看| 亚洲欧美日韩高清在线视频| 免费大片18禁| 夜夜看夜夜爽夜夜摸| 中文字幕精品亚洲无线码一区| 精品人妻视频免费看| 国产av一区在线观看免费| 女生性感内裤真人,穿戴方法视频| 欧美绝顶高潮抽搐喷水| 禁无遮挡网站| 亚洲自拍偷在线| 中文在线观看免费www的网站| 久久精品综合一区二区三区| 国产精品一区二区三区四区免费观看 | 欧美成人精品欧美一级黄| 日韩欧美三级三区| 久久久久免费精品人妻一区二区| 美女内射精品一级片tv| 嫩草影视91久久| 成年av动漫网址| 久久精品影院6| 国产成人freesex在线 | 亚洲自拍偷在线| 中文在线观看免费www的网站| 综合色av麻豆| .国产精品久久| 熟女人妻精品中文字幕| 一区福利在线观看| 99久久精品一区二区三区| 欧美激情在线99| 国内精品美女久久久久久| 免费看av在线观看网站| 亚洲av.av天堂| 人人妻人人看人人澡| 日韩av在线大香蕉| 精品人妻偷拍中文字幕| 欧美高清性xxxxhd video| 天堂√8在线中文| 精品99又大又爽又粗少妇毛片| 22中文网久久字幕| 国产精品久久久久久久久免| 国产高清视频在线观看网站| 欧美日韩国产亚洲二区| 插阴视频在线观看视频| 99国产极品粉嫩在线观看| 国产久久久一区二区三区| 十八禁网站免费在线| 亚洲,欧美,日韩| 性色avwww在线观看| 国产爱豆传媒在线观看| 欧美色欧美亚洲另类二区| 精品国产三级普通话版| 小蜜桃在线观看免费完整版高清| 少妇猛男粗大的猛烈进出视频 | 无遮挡黄片免费观看| 亚洲国产精品久久男人天堂| 97在线视频观看| 亚洲av五月六月丁香网| 最近2019中文字幕mv第一页| 精品国产三级普通话版| 国产激情偷乱视频一区二区| 日韩av在线大香蕉| 两个人的视频大全免费| 精品99又大又爽又粗少妇毛片| 亚洲av成人av| 欧美不卡视频在线免费观看| 亚洲人与动物交配视频| 国产精品久久久久久精品电影| 国产精品电影一区二区三区| av卡一久久| 国产女主播在线喷水免费视频网站 | 我的老师免费观看完整版| 久久精品国产99精品国产亚洲性色| 亚洲自偷自拍三级| 伊人久久精品亚洲午夜| 99久久精品国产国产毛片| 亚洲国产精品sss在线观看| 在线播放国产精品三级| 久久综合国产亚洲精品| 成年女人看的毛片在线观看| 亚洲精品456在线播放app| 亚洲精品色激情综合| 久久久久久久久久成人| 在现免费观看毛片| 日韩中字成人| 一级毛片aaaaaa免费看小| 亚洲国产精品成人综合色| 在线观看av片永久免费下载| 精品久久久久久成人av| 男女边吃奶边做爰视频| 婷婷精品国产亚洲av| 少妇人妻精品综合一区二区 | 国产一级毛片七仙女欲春2| 啦啦啦啦在线视频资源| 日本精品一区二区三区蜜桃| 国产精品一区二区三区四区免费观看 | 欧美最新免费一区二区三区| 少妇熟女欧美另类| 免费电影在线观看免费观看| 亚洲无线观看免费| 俺也久久电影网| 2021天堂中文幕一二区在线观| 又黄又爽又刺激的免费视频.| 男女之事视频高清在线观看| 国产女主播在线喷水免费视频网站 | 成年女人看的毛片在线观看| 国产v大片淫在线免费观看| 亚洲熟妇熟女久久| 国产黄片美女视频| 99热全是精品| 国产高清视频在线观看网站| 大香蕉久久网| 在线免费观看不下载黄p国产| 香蕉av资源在线| 特级一级黄色大片| 国产淫片久久久久久久久| 久久亚洲精品不卡| 人人妻人人看人人澡| 亚洲精品久久国产高清桃花| 国产精品福利在线免费观看| 国产色婷婷99| 欧美在线一区亚洲| 亚洲中文字幕一区二区三区有码在线看| 免费看日本二区| 有码 亚洲区| 99久久九九国产精品国产免费| 美女 人体艺术 gogo| 国产精品国产三级国产av玫瑰| 亚洲欧美日韩东京热| 亚洲欧美中文字幕日韩二区| 精品一区二区免费观看| 中国美白少妇内射xxxbb|