• <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 ?

    Efficient electrochemical reduction of CO to C2 products on the transition metal and boron co-doped black phosphorene

    2022-06-20 06:22:42LingyiKongZheChenQinghiCiLichngYinJingxingZho
    Chinese Chemical Letters 2022年4期

    Lingyi Kong,Zhe Chen,Qinghi Ci,c,Lichng Yin,Jingxing Zho,*

    a College of Chemistry and Chemical Engineering,and Key Laboratory of Photonic and Electronic Bandgap Materials,Ministry of Education,Harbin Normal University,Harbin 150025,China

    b Center of Artificial Photosynthesis for Solar Fuels,School of Science,Westlake University,Hangzhou 310024,China

    c Heilongjiang Province Collaborative Innovation Center of Cold Region Ecological Safety,Harbin 150025,China

    d Shenyang National Laboratory for Materials Science,Institute of Metal Research,Chinese Academy of Sciences,Shenyang 110016,China

    e Department of Physics and Electronic Information,Huaibei Normal University,Huaibei 235000,China.

    ABSTRACT The synthesis of high-value multi-carbon products through the electrochemical reduction of carbon monoxide(COER)is one of the promising avenues for carbon utilization and energy storage,in which searching for efficient electrocatalysts that exhibit moderate CO intermediate binding strength and low kinetic barrier for C-C coupling is a key issue.Herein,by means of comprehensive density functional theory(DFT)computations,we theoretically designed three synergistic coupling catalysts by co-doping transition metal(TM = Fe,Co and Ni)and boron(B)into the two-dimensional black phosphorene(BP),namely TMB@BP for COER to C2 products.DFT computations and ab initio molecular dynamics simulations reveal the good stability and high feasibility of these proposed TM-B@BP catalysts for practical applications and future experimental synthesis.More interestingly,high-value ethylene(C2H4),ethane(C2H6)and ethanol(C2H5OH)products can be obtained on these three designed electrocatalysts with ultra-small limiting potentials(-0.20~-0.41 V)and low kinetic energy barriers of C-C coupling(0.52~0.91 eV).Meanwhile,the competitive one-carbon(C1)products and hydrogen evolution reaction can also be effectively suppressed.The promising activity and selectivity of these three designed electrocatalysts render them ideal candidates for CO electroreduction,thus providing a cost-effective opportunity to achieve a sustainable production of high value C2 chemicals and fuels.

    Keywords:CO reduction Electrocatalysis Multi-carbon products Density functional theory 2D black phosphorene

    Electrochemical conversion of carbon dioxide(CO2)has been regarded as an attractive solution to reduce carbon emission called for by the Paris Agreement,as well as a renewable and sustainable carbon cycle route[1-3],in which green renewable electricity with low cost can be used to produce valuable carbon-based fuels and chemicals using high-efficiency electrocatalysts[4-6].In this field,the technologies of converting CO2to CO have already reached the level of industrial application[7],because many synthetic electrocatalysts can achieve this process with high-efficiency and low energy consumption,such as various Ni single-atom catalysts[8-11].However,it is difficult to obtain C2products(e.g.,C2H4,C2H6and C2H5OH)with higher economic value and wider industrial applications,due to the limitations of C-C coupling process during the CO2electroreduction[12,13].

    Therefore,the electrocatalytic reduction of CO(COER)to produce C2chemicals has become an effective alternative to the direct CO2conversion,because CO has been an increasingly low-cost feedstock through CO2electroreduction,as well as the key reaction intermediate for the C-C coupling process through two possible mechanisms,including the direct CO dimerization and“carbene”mechanism,in which a second CO molecule couples with some carbon-containing intermediates,such as CHO*,CH*and CH2*[13-16].Remarkably,many theoretical and experimental works have recently explored the high feasibility and attractive prospects of CO reduction(including the improved reaction selectivity and yield compared with direct CO2reduction),to obtain valuable C2products with high energy density and value[14-19].However,in order to drive the direct electrochemical conversion of CO molecules,it is highly desirable to develop efficient electrocatalyst to overcome the huge kinetic barrier of CO coupling.

    Currently,the exploration and fabrication of efficient electrocatalysts for COER are mainly focus on transition metals(TM)and boron(B)atoms due to their coexistence of empty and occupied orbitals,following the“acceptance-donation”mechanism to activate and convert CO molecules[20-24].However,the CO coupling process is difficult to be achieved on the single isolated TM or B catalytically active site[18,25-27].Especially,during the CO2electroreduction,the products obtained by effective single-atom catalysts are mainly concentrated in C1products[8-10,28],which can be ascribed to the lack of more active sites to promote CO coupling.Therefore,it is very promising to construct high-efficiency electrocatalysts with dual active sites to boost the C-C coupling process[29-31].

    With this in mind,we proposed three low-cost electrocatalysts with dual active sites for CO coupling and reductionviaco-doping TM and B atoms into the two-dimensional black phosphorus(BP),namely TM-B@BP,in which the low-cost Fe,Co and Ni atoms were taken as examples.Notably,the 2D BP has been widely chosen as a suitable substrate for single atom deposition due to its consecutive gully structure,and excellent optical/electrical properties,as well as the facile preparation by mechanical exfoliation or liquid phase exfoliation[32-34].In particular,the single B doped BP has been theoretically reported to exhibit wide applications in catalysis field,which could be synthesized in the future under suitable conditions due to its low formation energy[18,35-37].Based on the constructed TM-B@BP catalysts,we theoretically investigated the synergistic effect of the dual active sites composed of TM and B atom for the CO coupling,as well as corresponding catalytic activity and product distribution for COER.Our DFT results demonstrate that moderate kinetic energy barriers and significant exothermicity during the CO coupling process can be observed on the three designed dual-site catalysts,implying the high feasibility for C-C coupling process.Furthermore,the formed CO*-dimer intermediates can be easily hydrogenated to various C2products,such as C2H5OH,C2H4and C2H6,with very low limiting potentials of-0.41,-0.20 and-0.28 V,respectively,on the designed Fe-B@BP,Co-B@BP and Ni-B@BP catalysts,suggesting their superior catalytic performance for COER to C2products.Besides,the three proposed electrocatalysts can greatly suppress the production of the competing C1products and hydrogen,indicating their high selectivity towards C2products.Thus,our findings propose that the TM-B@BP(TM = Fe,Co and Ni)can be utilized as efficient electrocatalysts for the capture and conversion of CO molecules into high-value C2chemicals,which opens a new door for effective and sustainable carbon-cycle utilization.

    The ViennaAb InitioSimulation Package(VASP)code was used to perform all spin-polarized DFT calculations[38].Perdew-Burke-Ernzerhof(PBE)functional was employed to describe the exchange correlation interactions within the generalized gradient approximation.The electron-ion interactions were represented by the projector augmented wave(PAW)method[39,40].The kinetic energy cutoff of the plane wave was set to be 500 eV.The convergence criterion for forces on each atom and electronic structure iteration were set to be 0.03 eV/?A and 10-5eV,respectively.Van der Waals interaction was described by the empirical correction in Grimme’s method(DFT+D3)[41].A 3 × 4 supercell of BP monolayer consisting of 48 P atoms was constructed for the co-doping of TM(Fe,Co and Ni)atom and B atom.The vacuum space in thezdirection was set to be 15 ?A,which is large enough to minimize the interaction between periodic images.Thek-point in the Brillouin zone was sampled with a 3×3×1 Monkhorst-Pack.The climbing image nudged elastic band(CI-NEB)method was used to search for transition state with only one imaginary frequency[42].Ab initiomolecular dynamics simulations(AIMD)were performed in the canonical ensemble(NVT)with Nose-Hoover thermostat at 300 K for a time period of 5 ps[43,44].The charge population and transfer were calculated by using the Bader Charge analysis[45].Other computational details including adsorption energy,cohesive energy,formation energy,and free energy calculations as well as the influence of strong correlation interaction and solvation effect were summarized in Supporting information.

    Fig.1.(a)Schematic diagram of designed TM-B co-doped BP catalysts with paraconfiguration.(b)The calculated formation energies and cohesive energies of designed Fe-B@BP,Co-B@BP and Ni-B@BP catalysts.

    The structural stability and experimental feasibility of a given catalyst are the prerequisite for its long-term applications.To this end,based on the 2D structure of BP with gully feature[18],we substituted two separate P atoms with one TM atom and one B atom by considering three configurations,includingpara-,metaandortho-doping configuration(Fig.S1 in Supporting information).After fully structural relaxation without any constraint,we found that the para-doping configuration is more energetically favorable than other two structures by about 0.20~0.50 eV(Table S1 in Supporting information),suggesting that the former is more stable.Notably,a negative correlation between the computed total energy and the TM-B distance can be obtained.For example,the Fe-B distance in the para-configuration with the lowest total energy is 3.66 ?A,which is larger than those ofmeta-(3.37 ?A)andortho-doping one(1.85 ?A),and similar phenomenon can also be observed for Co-B@BP and Ni-B@BP.Thus,in the following discussion,theparadoping configuration will be mainly focused(Fig.1a).

    After confirming the structures of the three designed TM-B@BP catalysts,we further examined their corresponding formation energies and cohesive energies to evaluate their experimental feasibility and structural stability.As shown in Fig.1b,the formation energies of Fe-B@BP,Co-B@BP and Ni-B@BP catalyst were calculated to be 2.15,1.82 and 1.58 eV,respectively,which are significantly lower than those of experimentally synthesized Fe@N4and Co@N4catalysts(2.26 eV and 2.27 eV,respectively)[46],implying their high synthesis feasibility under experimental conditions.Furthermore,their cohesive energies are calculated to be 3.62,3.63 and 3.64 eV per atom,respectively,which are slightly higher than that of pure 2D BP(3.57 eV per atom),indicating the high structural stabilities of the three catalysts.In addition,the AIMD simulations were also performed to evaluate their thermodynamic stabilities.As shown in Fig.S2(Supporting information),the atomic structures of the three TM-B@BP are well preserved after 5 ps AIMD simulations,further verifying their outstanding structural stabilities.

    Since the electronic properties of one designed catalyst play an important role in its catalytic performance,we further examined the total density of states(TDOS)of Fe-B@BP,Co-B@BP and Ni-B@BP with corresponding local density of states(LDOS)of TM and B dopants as presented in Fig.S3(Supporting information).As obviously shown here,F(xiàn)e dopant shows higher occupied and unoccupied states near the Fermi level,indicating that it can adsorb the target CO molecule more stably,based on the“acceptancedonation”mechanism,followed by Co and Ni dopant.Furthermore,regarding the B dopants in these three designed catalysts,basically the same LDOS(B-LDOS)can be observed,with obvious unoccupied orbital above the Fermi level,implying their similar capture ability for CO molecule.In general,combined with excellent stabilities and electronic properties,three designed catalysts are expected to be highly possible for subsequent CO adsorption,coupling and reduction.

    Fig.2.(a)The calculated relative energy changes of CO adsorption and coupling process on the designed Fe-B@BP,Co-B@BP and Ni-B@BP catalysts,in which *represents catalytic active site.(b)The corresponding atomic structures of 2CO*,transition state(TS)and CO*-dimer.

    According to previous studies[17-19],the coupling of two CO molecules into a CO*-dimer is a key elementary step to affect and determine the reduction of CO to C2products due to its possible huge energy barrier for the C-C bond formation.Therefore,to evaluate the possibility of CO coupling to CO-dimer species under reaction conditions,we explored this process on the three TM-B@BP catalysts from both the viewpoints of thermodynamics and kinetics.As shown in Fig.2,we found that the first CO molecule is more stably adsorbed on the TM sites,with the adsorption energies of-1.81,-1.59 and-1.18 eV on Fe,Co and Ni site,respectively.Subsequently,the second CO molecule can be captured at the B sites,with the correspondingly released energies of-0.89,-0.93 and-0.93 eV.Our DFT results clearly reveal that the designed TM-B@BP catalysts show a strong capture capability towards two CO molecules.Remarkably,the calculated adsorption strengths of CO molecules on the TM and B active sites are fully consistent with our speculations based on the DOS analysis.Besides,detailed LDOS and COHP(crystal orbital Hamilton population)after two CO molecules adsorption and further analysis can be found in Fig.S4(Supporting information).

    Furthermore,we examined the C-C bond formationviathe coupling of the two separately adsorbed CO molecules.According to the CI-NEB method,moderate kinetic energy barriers of 0.91,0.77 and 0.52 eV should be overcome for the CO coupling to generate C-C bond(i.e.,CO*-dimer)on the designed Fe-B@BP,Co-B@BP and Ni-B@BP catalysts,respectively.Interestingly,these kinetic energy barriers of CO coupling on the TM-B@BP catalysts(0.91,0.77 and 0.52 eV)are comparable(even lower)to other potential catalysts for CO coupling,such as B/C2N(0.73 eV)[17],B-N@BP(0.60)[18],Cu-B@g-C3N4(0.99 eV)[30],boron nitride nanoribbon(1.30 eV)[47]and Cu(211)surface(1.62 eV)[48].Thus,the direct dimerization of two adsorbed CO*species on TM-B@BP catalysts can easily proceed in kinetics.In addition,this step of 2CO(g)→CO*-dimer is highly exothermic by 1.99,1.96 and 1.70 eV,respectively,on the designed Fe-B@BP,Co-B@BP and Ni-B@BP catalysts,respectively(Fig.2).After considering the contribution of zero-point energy and entropy,the free energy changes for the formation of CO*-dimer species are computed to be-0.86,-0.83 and-0.56 eV,respectively,on the three catalysts.Especially,the newly formed C-C bond lengths of CO*-dimer on Fe-B@BP,Co-B@BP and Ni-B@BP are 1.56,1.63 and 1.66 ?A,respectively,which is slightly longer than that of ethane(1.54 ?A),further testifying the formation of stable C-C bondviaCO coupling.Overall,the low kinetic barrier,high exothermicity,and short C-C bond length indicate that the CO coupling is favorable on these three designed catalysts both kinetically and thermodynamically,which normally help to trigger the generation of multi-carbon products.

    Fig.3.The difference charge density plots for 2CO*and CO*-dimer on the designed(a)Fe-B@BP,(b)Co-B@BP and(c)Ni-B@BP catalyst.The isosurface value is set to be 0.003 e/?A3,the charge accumulated and depleted regions are shown in yellow and cyan,respectively.

    Fig.4.Free energy diagrams of CO reduction into C2 products at 0 V potentials on the designed(a)Fe-B@BP,(b)Co-B@BP and(c)Ni-B@BP catalyst,in which the dash lines represent the proton-coupled electron transfer processes and the solid lines indicate the pure adsorption or desorption processes.

    To gain deep insight into the CO coupling,we further computed the difference charge density of the two separated adsorbed CO*and CO*-dimer(Fig.3).Our results demonstrate that obvious charge accumulation(yellow color)occurs between the TM dopant and the adsorbed CO molecule,while both the charge accumulation and charge depletion appear between the B dopant and another adsorbed CO molecule,especially the obvious surrounding charge depleted regions(cyan color).Such coexisting charge accumulation and depletion regions will greatly promote the C-C coupling due to the attraction of positive and negative charges between each other.In addition,significant charge transfer(about 0.83,0.72 and 0.68|e|,respectively)can be observed between the CO*-dimer and the designed Fe-B@BP,Co-B@BP and Ni-B@BP catalysts,implying the high chemical reactivity of the three TM-B@BP catalysts towards the C-C bond formation.Therefore,the co-doping of TM(Fe,Co and Ni)and B can lead to the CO coupling to form stable C-C bond on three TM-B@BP catalysts,which will play an important role on yielding the multi-carbon products through the continuous hydrogenation processes.

    Since the CO coupling can be easily achieved in terms of thermodynamics and kinetics on the three designed electrocatalysts,we further examined the subsequent hydrogenation step of CO*-dimer to generate C2productsviamultiple proton-coupled electron transfer steps(H++e-).Fig.4 summarizes the most energetically favorable reaction pathway of CO reduction(with the lowest positive free energy change(ΔG)between any two elementary steps)towards C2products on these TM-B@BP catalysts,and the corresponding atomic structures of the involved reaction intermediates are presented in Figs.S5-S7(Supporting information).

    As discussed above,two CO molecules are firstly coupled to form CO*-dimer species with theΔGvalues of-0.86,-0.83 and-0.56 eV on Fe-B@BP,Co-B@BP and Ni-B@BP,respectively.Subsequently,on the three designed TM-B@BP catalysts,various hydrogenation reaction pathways will proceed,thus generating different C2products.Specifically,on the Fe-B@BP catalyst(Fig.4a and Fig.S5),the first few steps of reducing CO*-dimer to C2products are as follows:*CO-dimer →*COHCO →*COHCOH →*CHOHCOH→*CHCOH →*CH2COH,with theΔGvalues of-0.16,+0.05,-0.03,-0.49 and-0.45 eV,respectively.Subsequently the formed*CH2COH species will be hydrogenated to*CH3COH or*CH2CHOH.As shown in Fig.4a,along the*CH3COH path,the final product is ethanol(CH3CH2OH),while ethylene(CH2CH2)will be achieved along*CH2CHOH pathway.Especially,the hydrogenation of*CH2COH species to*CH3COH or*CH2CHOH is identified as the potential-determining step(PDS)during the whole CO electroreduction due to its largest positive free energy change(0.39 or 0.41 eV)among all elementary reactions.Therefore,due to the small difference in the free energy change for the two steps,these two valuable products can be achieved through CO electroreduction on the designed Fe-B@BP catalyst at a low limiting potential of-0.41 V.Notably,the obtained CH3CH2OH and CH2CH2products can be spontaneously separated due to their different phases at room temperature.

    As for the Co-B@BP catalyst(Fig.4b and Fig.S6),viathe continuous hydrogenation processes,CO*-dimer is finally reduced to CH2CH2product,following the reaction paths as:CO*-dimer →*COHCO →*COHCOH →*CHOHCOH →*CHCOH →*CH2COH →*CH2CHOH →*CH2CH →*CH2CH2,in which the first hydrogenation of CO*-dimer to produce*COCOH species is the potential-determining step,with the uphill free energy change of 0.20 eV,corresponding to the limiting potential of-0.20 V.In addition,on the Ni-B@BP catalyst,as presented in Fig.4c and Fig.S7,the CO*-dimer species is gradually hydrogenated to achieve*CH3CH2OH species,in which the formation of*COHCO species exhibits the largest free energy change of 0.28 eV.Subsequently,there are two competing reactions for the further hydrogenation of obtained*CH3CH2OH species:(1)it will release from the catalyst surface to produce ethanol,or(2)be further hydrogenated to generate CH3CH3+*OH.According to their free energy changes(0.16 eVvs.-0.06 eV),we predicted that CH3CH3is the dominant product for COER on the Ni-B@BP catalyst with a very low limiting potential of-0.28 V.Finally,the remaining*OH species can be easily reduced to H2O molecule with the free energy change of-0.81 eV.

    Overall,on the three electrocatalysts(Fe-B@BP,Co-B@BP and Ni-B@BP),extremely low energy inputs(0.41,0.20 and 0.28 eV,respectively)are required to boost the conversion of CO molecules into multiple valuable C2products(ethanol,ethylene and ethane,respectively),which are lower than(or comparable to)those of previously reported Cu(100)surface(0.31 eV)[49],defective Mo2TiC2O2(0.32 eV)[50],Cu-B@g-C3N4(0.45 eV)[30],and copper/borophene interface(0.61 eV)[51],thus suggesting their high catalytic activities of COER to generate high-value C2products.

    In addition to their high catalytic activities of the three electrocatalysts for achieving C2products during the COER,another important issue is their selectivity towards C2products in the practical applications.In this regard,two competing reactions should be considered,including the COER to C1products and the hydrogen evolution reaction(HER)at the active sites[18].For the former,the free energy change for the hydrogenation of the single CO at different active sites to form*CHO species was examined.As shown in Table S2(Supporting information),we found that theΔGvalues for*CO →*CHO are at least 0.55 eV at both TM and B active sites,which are always larger than the maximumΔGvalue for COER to C2products(0.20~0.41 eV),suggesting their higher selectivity for C2products.On the other hand,for the HER,we calculated the adsorption energy of proton(H*)to evaluate the competitive adsorption with CO molecules(Table S2).Our results show that the H*species is unstably adsorbed at the TM sites with the adsorption energies ranging from-0.06 eV to+0.24 eV due to the repulsion between the positively charged TM and H+.On the contrary,the B site show a strong interaction with H*species with the adsorption energy of-0.67 eV.These adsorption energies of hydrogen are less negative than those of two CO molecules on TM and B sites(at least-0.89 eV),suggesting that the active sites are more energetically favorable to be covered by CO molecules,greatly suppressing the competitive HER and thus suggesting high selectivity for CO electroreduction towards C2products.

    In summary,by performing comprehensive DFT computations,we designed a new kind of electrocatalyst for the CO reduction to generate valuable C2chemicalsviaco-doping the 2D BP with the TM(TM = Fe,Co and Ni)and B atoms.Our results demonstrate that two CO molecules can be effectively coupled into the key CO*-dimer species both thermodynamically and kinetically,due to the synergistic effect between the TM and B active sites.Furthermore,based on the free energy computations,we found that all three TM-B@BP catalysts exhibit the desired high catalytic activities for COER with the rather low limiting potentials(-0.41,-0.20 and-0.28 V),and ethanol,ethylene and ethane were identified as the main products.In addition,due to the lower energy inputs during COER to C2products and the stronger interactions between designed catalysts and CO molecules,the competing C1products in COER and H2product in HER can be effectively suppressed,endowing our proposed TM-B@BP electrocatalysts high selectivity for C2products.Therefore,our simulations show that the three asdesigned TM-B@BP catalysts can be utilized as a new type of lowcost electrocatalysts with high activity and selectivity for CO conversion to high-value multi-carbon products,providing useful guidance for sustainable carbon fixation and energy storage in future.

    Declaration of competing interest

    The authors declare no competing financial interest.

    Acknowledgments

    This work is supported by the National Natural Science Foundation of China(NSFC,Nos.51972312 and U20A20242)and the Natural Science Foundation of Liaoning Province of China(No.2020-MS-003).The authors acknowledge the computation support from TianHe-1(A)at the National Supercomputer Center in Tianjin and Tianhe-2 at the National Supercomputer Center in Guangzhou.

    Supplementary materials

    Supplementary material associated with this article can be found,in the online version,at doi:10.1016/j.cclet.2021.09.010.

    亚洲综合精品二区| 嘟嘟电影网在线观看| 国产69精品久久久久777片| 一本久久精品| 精品亚洲乱码少妇综合久久| 少妇人妻精品综合一区二区| videossex国产| 成人高潮视频无遮挡免费网站| 精品亚洲乱码少妇综合久久| 国产乱来视频区| 熟女人妻精品中文字幕| 麻豆成人午夜福利视频| 最后的刺客免费高清国语| 一本—道久久a久久精品蜜桃钙片 精品乱码久久久久久99久播 | av播播在线观看一区| 成人毛片60女人毛片免费| 网址你懂的国产日韩在线| 久久这里有精品视频免费| 亚洲三级黄色毛片| 久久久久久久大尺度免费视频| 亚洲精品456在线播放app| 99久久人妻综合| 黄色欧美视频在线观看| 亚洲精品,欧美精品| 天天躁夜夜躁狠狠久久av| 亚洲精品视频女| 精品国产三级普通话版| 欧美性猛交╳xxx乱大交人| 欧美日韩国产mv在线观看视频 | 亚洲欧美清纯卡通| 大片免费播放器 马上看| 久久韩国三级中文字幕| 亚洲精品国产av成人精品| 国产精品人妻久久久久久| 女人被狂操c到高潮| 国产精品一区www在线观看| 国产精品久久久久久精品电影小说 | 日韩一区二区视频免费看| 精品人妻熟女av久视频| 热re99久久精品国产66热6| 国产色婷婷99| 内射极品少妇av片p| 久久女婷五月综合色啪小说 | 一级毛片我不卡| 51国产日韩欧美| 免费在线观看成人毛片| 亚洲av二区三区四区| 日本三级黄在线观看| 久久精品久久久久久久性| 禁无遮挡网站| 国产成人a∨麻豆精品| 亚洲婷婷狠狠爱综合网| 最近手机中文字幕大全| 美女cb高潮喷水在线观看| 91在线精品国自产拍蜜月| 观看美女的网站| 亚洲精品久久午夜乱码| 亚洲婷婷狠狠爱综合网| 丰满少妇做爰视频| 亚洲精品日本国产第一区| 国产精品99久久99久久久不卡 | 成人黄色视频免费在线看| 欧美性猛交╳xxx乱大交人| 午夜激情福利司机影院| 可以在线观看毛片的网站| 身体一侧抽搐| 噜噜噜噜噜久久久久久91| 亚洲精品第二区| 成人美女网站在线观看视频| 亚洲激情五月婷婷啪啪| 久久人人爽av亚洲精品天堂 | 国产毛片在线视频| 美女主播在线视频| 久久久久久久精品精品| 91精品国产九色| 亚洲,欧美,日韩| av在线观看视频网站免费| 在线观看国产h片| 秋霞在线观看毛片| 十八禁网站网址无遮挡 | 午夜精品国产一区二区电影 | 欧美性猛交╳xxx乱大交人| 国产乱来视频区| 亚洲无线观看免费| 免费播放大片免费观看视频在线观看| 亚洲欧美日韩卡通动漫| 国产乱人偷精品视频| 欧美区成人在线视频| 中国三级夫妇交换| 国产综合精华液| 亚洲欧美中文字幕日韩二区| 国产免费视频播放在线视频| 伦理电影大哥的女人| 国产精品偷伦视频观看了| 国产精品国产三级国产av玫瑰| 青青草视频在线视频观看| 插阴视频在线观看视频| 男插女下体视频免费在线播放| 日本与韩国留学比较| 精品一区在线观看国产| 男人爽女人下面视频在线观看| 精品人妻一区二区三区麻豆| 在线a可以看的网站| 午夜福利在线在线| 亚洲精品乱码久久久久久按摩| 高清日韩中文字幕在线| 国产一区亚洲一区在线观看| 亚洲高清免费不卡视频| videossex国产| 欧美性猛交╳xxx乱大交人| 男插女下体视频免费在线播放| 成人二区视频| 男人添女人高潮全过程视频| www.av在线官网国产| 国产成人午夜福利电影在线观看| 国产伦在线观看视频一区| 精品亚洲乱码少妇综合久久| 波多野结衣巨乳人妻| 人妻一区二区av| 成人毛片60女人毛片免费| 亚洲av男天堂| 特大巨黑吊av在线直播| 国产免费一区二区三区四区乱码| 春色校园在线视频观看| 韩国高清视频一区二区三区| 国产成人aa在线观看| 美女cb高潮喷水在线观看| 午夜爱爱视频在线播放| 国产中年淑女户外野战色| 少妇熟女欧美另类| 国产v大片淫在线免费观看| 韩国高清视频一区二区三区| 熟妇人妻不卡中文字幕| 国产在线男女| 色综合色国产| 91久久精品电影网| 亚洲成人中文字幕在线播放| 欧美日韩精品成人综合77777| 99热这里只有是精品50| 一级黄片播放器| 毛片女人毛片| 亚洲av不卡在线观看| 免费观看无遮挡的男女| 国产免费视频播放在线视频| 久久久久精品性色| 禁无遮挡网站| 亚洲国产精品成人综合色| 日韩av在线免费看完整版不卡| 亚洲精品日韩av片在线观看| 久久久久久国产a免费观看| 色哟哟·www| 国产精品久久久久久av不卡| 2021少妇久久久久久久久久久| 欧美3d第一页| av在线亚洲专区| 久久久久久久亚洲中文字幕| 国内精品宾馆在线| 97热精品久久久久久| 免费观看的影片在线观看| 久久精品久久久久久久性| 精品亚洲乱码少妇综合久久| 精品少妇黑人巨大在线播放| 亚洲精华国产精华液的使用体验| 色网站视频免费| 国产免费福利视频在线观看| 日韩欧美精品v在线| 爱豆传媒免费全集在线观看| 欧美性猛交╳xxx乱大交人| 国产视频内射| 国产精品99久久久久久久久| 欧美区成人在线视频| 亚洲成人精品中文字幕电影| 国产一区亚洲一区在线观看| av在线播放精品| 国产精品嫩草影院av在线观看| 久久久久久久国产电影| 亚洲精华国产精华液的使用体验| 国产成人精品久久久久久| 精品人妻视频免费看| 国产精品三级大全| 五月天丁香电影| 国产久久久一区二区三区| 男女边吃奶边做爰视频| 午夜激情福利司机影院| 插逼视频在线观看| 观看美女的网站| 久久久a久久爽久久v久久| 久久久亚洲精品成人影院| 精品少妇久久久久久888优播| 久久久久久久久久久丰满| 成人毛片60女人毛片免费| 偷拍熟女少妇极品色| 国产在线一区二区三区精| 男的添女的下面高潮视频| 精品少妇久久久久久888优播| 新久久久久国产一级毛片| 久久精品人妻少妇| 校园人妻丝袜中文字幕| 欧美潮喷喷水| 一区二区av电影网| 亚洲成人久久爱视频| 黄色一级大片看看| 久久久久久国产a免费观看| 午夜爱爱视频在线播放| 有码 亚洲区| 欧美精品国产亚洲| 男插女下体视频免费在线播放| 乱码一卡2卡4卡精品| 一级毛片黄色毛片免费观看视频| 成人黄色视频免费在线看| a级毛片免费高清观看在线播放| 亚洲精品影视一区二区三区av| 国产精品久久久久久精品古装| 91狼人影院| 黄片wwwwww| 亚洲色图综合在线观看| 国产精品伦人一区二区| 亚洲欧美日韩东京热| 一级毛片黄色毛片免费观看视频| 亚洲av免费在线观看| 免费观看的影片在线观看| 日韩欧美一区视频在线观看 | av国产免费在线观看| 亚洲国产精品成人综合色| 别揉我奶头 嗯啊视频| 免费av不卡在线播放| 成人国产av品久久久| 伦精品一区二区三区| 久久久午夜欧美精品| 国产亚洲最大av| 一本一本综合久久| 日日啪夜夜爽| 国产av码专区亚洲av| 2018国产大陆天天弄谢| 免费观看无遮挡的男女| 亚洲av在线观看美女高潮| 婷婷色综合www| 有码 亚洲区| 一级毛片我不卡| 亚洲国产精品国产精品| 国产av码专区亚洲av| 男女边吃奶边做爰视频| 日韩 亚洲 欧美在线| 99re6热这里在线精品视频| 亚洲欧洲国产日韩| 日本一二三区视频观看| 夜夜爽夜夜爽视频| 交换朋友夫妻互换小说| 亚洲欧洲日产国产| 毛片女人毛片| 久久亚洲国产成人精品v| eeuss影院久久| 久久午夜福利片| 亚洲天堂国产精品一区在线| 亚洲经典国产精华液单| 国产精品人妻久久久影院| 亚洲国产精品成人久久小说| 91在线精品国自产拍蜜月| 97精品久久久久久久久久精品| 欧美变态另类bdsm刘玥| 熟女电影av网| 久久99蜜桃精品久久| 国产成人福利小说| 国产精品熟女久久久久浪| 欧美潮喷喷水| 亚洲av日韩在线播放| 一本—道久久a久久精品蜜桃钙片| 国产精品欧美亚洲77777| 亚洲国产最新在线播放| 十八禁高潮呻吟视频| 国产成人精品在线电影| av在线观看视频网站免费| 国产成人欧美在线观看 | 精品少妇黑人巨大在线播放| 久久精品亚洲av国产电影网| 男女国产视频网站| 超碰97精品在线观看| 亚洲国产精品999| 亚洲一区二区三区欧美精品| 两个人看的免费小视频| 国产精品99久久99久久久不卡 | 一本—道久久a久久精品蜜桃钙片| 精品国产国语对白av| 狠狠精品人妻久久久久久综合| 亚洲精品美女久久av网站| 久久久精品国产亚洲av高清涩受| 亚洲精品av麻豆狂野| 欧美日韩亚洲高清精品| 91精品国产国语对白视频| 精品卡一卡二卡四卡免费| 欧美日韩国产mv在线观看视频| 巨乳人妻的诱惑在线观看| 久久精品国产亚洲av高清一级| xxx大片免费视频| 最近手机中文字幕大全| 国产精品麻豆人妻色哟哟久久| 狠狠婷婷综合久久久久久88av| 日韩一卡2卡3卡4卡2021年| 一本大道久久a久久精品| 欧美97在线视频| 亚洲人成电影观看| 久久99热这里只频精品6学生| 亚洲第一av免费看| 国产 一区精品| 最近手机中文字幕大全| 日韩一区二区视频免费看| 国产精品国产三级专区第一集| 美女福利国产在线| 精品亚洲成国产av| 久久久久久久久久久久大奶| av天堂久久9| 在线观看www视频免费| 日韩熟女老妇一区二区性免费视频| 日日撸夜夜添| 在现免费观看毛片| 考比视频在线观看| 黄片无遮挡物在线观看| 国产免费视频播放在线视频| 欧美精品高潮呻吟av久久| 欧美精品人与动牲交sv欧美| 最近中文字幕高清免费大全6| 黄网站色视频无遮挡免费观看| 蜜桃在线观看..| 亚洲国产欧美一区二区综合| 免费久久久久久久精品成人欧美视频| 人妻人人澡人人爽人人| 97在线人人人人妻| 精品国产乱码久久久久久男人| 亚洲成国产人片在线观看| 一二三四在线观看免费中文在| 亚洲在久久综合| 欧美日韩视频精品一区| 一区二区三区四区激情视频| 九九爱精品视频在线观看| 天堂中文最新版在线下载| 日本猛色少妇xxxxx猛交久久| 国产一级毛片在线| 一本大道久久a久久精品| 天堂俺去俺来也www色官网| 亚洲,欧美精品.| 十分钟在线观看高清视频www| 韩国av在线不卡| 高清视频免费观看一区二区| 人人妻人人澡人人看| 亚洲自偷自拍图片 自拍| 成年动漫av网址| 丝袜人妻中文字幕| 啦啦啦在线免费观看视频4| 精品人妻一区二区三区麻豆| 久久久久久久久久久久大奶| 精品少妇久久久久久888优播| 国产乱人偷精品视频| 天天操日日干夜夜撸| xxx大片免费视频| 麻豆乱淫一区二区| 久久鲁丝午夜福利片| 国产一区二区在线观看av| 久久精品久久精品一区二区三区| 国产日韩欧美亚洲二区| 丁香六月天网| 国产一区有黄有色的免费视频| 久久精品亚洲av国产电影网| 夜夜骑夜夜射夜夜干| 在线天堂中文资源库| 午夜久久久在线观看| 乱人伦中国视频| 亚洲一卡2卡3卡4卡5卡精品中文| 五月天丁香电影| 久久女婷五月综合色啪小说| 精品一区在线观看国产| 精品亚洲乱码少妇综合久久| 日韩av在线免费看完整版不卡| 亚洲综合精品二区| 亚洲国产日韩一区二区| 精品一区在线观看国产| 亚洲欧美色中文字幕在线| 在线观看免费午夜福利视频| 在线观看www视频免费| 电影成人av| 超碰成人久久| 人人妻人人澡人人爽人人夜夜| 可以免费在线观看a视频的电影网站 | 免费在线观看黄色视频的| 秋霞在线观看毛片| 国产成人精品在线电影| 免费av中文字幕在线| 新久久久久国产一级毛片| 日本午夜av视频| 免费黄色在线免费观看| 狠狠婷婷综合久久久久久88av| 国产精品一区二区在线不卡| 一个人免费看片子| 亚洲欧美成人综合另类久久久| 亚洲欧美清纯卡通| 久久鲁丝午夜福利片| 亚洲情色 制服丝袜| 日韩电影二区| 菩萨蛮人人尽说江南好唐韦庄| 天堂俺去俺来也www色官网| 黑丝袜美女国产一区| 中文字幕最新亚洲高清| 一本大道久久a久久精品| 亚洲精品国产av成人精品| 精品人妻在线不人妻| av.在线天堂| 久久青草综合色| 久久精品国产a三级三级三级| 日韩av在线免费看完整版不卡| 大片免费播放器 马上看| avwww免费| 大香蕉久久成人网| 午夜91福利影院| 一区福利在线观看| 成年美女黄网站色视频大全免费| 高清av免费在线| 国产一级毛片在线| 亚洲国产日韩一区二区| 18禁裸乳无遮挡动漫免费视频| 亚洲成人一二三区av| 国产一区二区激情短视频 | 男人爽女人下面视频在线观看| a级片在线免费高清观看视频| 欧美最新免费一区二区三区| 香蕉国产在线看| 欧美 亚洲 国产 日韩一| 日本黄色日本黄色录像| 欧美中文综合在线视频| 自线自在国产av| 男的添女的下面高潮视频| 交换朋友夫妻互换小说| 综合色丁香网| 性色av一级| 波野结衣二区三区在线| 一边亲一边摸免费视频| 国产精品蜜桃在线观看| 国产精品 国内视频| 高清不卡的av网站| 日韩av免费高清视频| 久久久久久久精品精品| 波多野结衣av一区二区av| 免费在线观看黄色视频的| 亚洲三区欧美一区| 精品国产露脸久久av麻豆| 久久99热这里只频精品6学生| 久久精品aⅴ一区二区三区四区| 国产精品秋霞免费鲁丝片| 亚洲三区欧美一区| a级片在线免费高清观看视频| 精品久久久久久电影网| 人妻人人澡人人爽人人| 亚洲精品久久成人aⅴ小说| 欧美亚洲 丝袜 人妻 在线| 成人亚洲精品一区在线观看| 国产精品免费大片| 韩国av在线不卡| 一区二区日韩欧美中文字幕| 99久久精品国产亚洲精品| 国产精品熟女久久久久浪| 欧美 亚洲 国产 日韩一| 欧美亚洲日本最大视频资源| 美女高潮到喷水免费观看| 欧美日韩综合久久久久久| 精品福利永久在线观看| 丰满乱子伦码专区| 日本欧美国产在线视频| 蜜桃在线观看..| 精品午夜福利在线看| 亚洲熟女毛片儿| 国产不卡av网站在线观看| 亚洲av欧美aⅴ国产| 日日爽夜夜爽网站| 自线自在国产av| 老司机影院毛片| 久久久国产精品麻豆| 一级,二级,三级黄色视频| 亚洲色图综合在线观看| 免费黄网站久久成人精品| av.在线天堂| 最近最新中文字幕免费大全7| 三上悠亚av全集在线观看| 午夜免费男女啪啪视频观看| 亚洲av欧美aⅴ国产| 中文字幕最新亚洲高清| 免费黄网站久久成人精品| 又大又爽又粗| 丰满乱子伦码专区| 999精品在线视频| 亚洲,欧美,日韩| 桃花免费在线播放| 激情视频va一区二区三区| 久久精品国产亚洲av涩爱| 青草久久国产| 色播在线永久视频| 一个人免费看片子| 久久99精品国语久久久| 国产av国产精品国产| 蜜桃国产av成人99| 五月开心婷婷网| 我的亚洲天堂| 自线自在国产av| 久久天躁狠狠躁夜夜2o2o | 午夜福利一区二区在线看| 这个男人来自地球电影免费观看 | 亚洲精品国产区一区二| 亚洲美女搞黄在线观看| 大香蕉久久网| 免费在线观看黄色视频的| 亚洲自偷自拍图片 自拍| 亚洲成人国产一区在线观看 | 久久精品熟女亚洲av麻豆精品| 亚洲欧美精品自产自拍| www.熟女人妻精品国产| 美国免费a级毛片| 亚洲精品美女久久av网站| 一级毛片 在线播放| 日本一区二区免费在线视频| 午夜福利影视在线免费观看| 日韩一区二区视频免费看| 午夜日本视频在线| 曰老女人黄片| 99国产精品免费福利视频| 亚洲国产av新网站| 精品久久久精品久久久| 午夜福利免费观看在线| av福利片在线| 成人漫画全彩无遮挡| 男女午夜视频在线观看| 亚洲精品aⅴ在线观看| 亚洲精品久久午夜乱码| 人妻一区二区av| 汤姆久久久久久久影院中文字幕| 国产一区二区 视频在线| 国产在线一区二区三区精| 国产欧美日韩综合在线一区二区| 成年人午夜在线观看视频| 亚洲成人国产一区在线观看 | 观看av在线不卡| 丰满少妇做爰视频| avwww免费| 亚洲欧美精品自产自拍| 青草久久国产| 中文字幕av电影在线播放| 日韩电影二区| av免费观看日本| 精品一区二区免费观看| 国产精品女同一区二区软件| 18禁观看日本| 成人18禁高潮啪啪吃奶动态图| 亚洲人成网站在线观看播放| 国产精品一国产av| 日韩免费高清中文字幕av| 国产精品香港三级国产av潘金莲 | 亚洲成色77777| 中文字幕人妻熟女乱码| 激情视频va一区二区三区| www.av在线官网国产| 日本爱情动作片www.在线观看| 免费黄网站久久成人精品| 99国产综合亚洲精品| 日韩成人av中文字幕在线观看| 久久久久久久大尺度免费视频| 大话2 男鬼变身卡| 午夜福利影视在线免费观看| 欧美黑人欧美精品刺激| 成人国语在线视频| 一边摸一边抽搐一进一出视频| 国产精品av久久久久免费| 中国国产av一级| 亚洲欧美色中文字幕在线| 大香蕉久久成人网| 韩国av在线不卡| 午夜福利,免费看| 精品久久蜜臀av无| 99久久人妻综合| 欧美日韩成人在线一区二区| 美国免费a级毛片| 91成人精品电影| 国产97色在线日韩免费| 欧美亚洲日本最大视频资源| 人体艺术视频欧美日本| 国产视频首页在线观看| 国产一卡二卡三卡精品 | 18禁观看日本| 免费女性裸体啪啪无遮挡网站| 2018国产大陆天天弄谢| 亚洲国产成人一精品久久久| 人成视频在线观看免费观看| 久久ye,这里只有精品| av电影中文网址| 精品国产一区二区三区四区第35| 大片电影免费在线观看免费| 国产精品久久久久久精品古装| 永久免费av网站大全| 侵犯人妻中文字幕一二三四区| 亚洲成色77777| av一本久久久久| 成年动漫av网址| bbb黄色大片| 亚洲五月色婷婷综合| 久久国产精品大桥未久av| 国产av精品麻豆| 国产激情久久老熟女| 自线自在国产av| 一区在线观看完整版| 黄色毛片三级朝国网站| 蜜桃在线观看..| 少妇人妻 视频| 亚洲欧美激情在线| 美女脱内裤让男人舔精品视频| 老司机深夜福利视频在线观看 | av.在线天堂| 亚洲精品日本国产第一区| 人妻一区二区av| 黑人猛操日本美女一级片| 国产日韩欧美亚洲二区|