• <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 ?

    Effect of strain on electrochemical performance of Janus MoSSe monolayer anode material for Li-ion batteries: First-principles study?

    2021-05-06 08:55:16GuoqingWang王國(guó)慶WenjingQin秦文靜andJingShi石晶
    Chinese Physics B 2021年4期
    關(guān)鍵詞:文靜王國(guó)

    Guoqing Wang(王國(guó)慶), Wenjing Qin(秦文靜), and Jing Shi(石晶),?

    1Department of Physics,Jiangxi Normal University,Nanchang 330022,China

    2Institute of Fundamental and Frontier Sciences,University of Electronic Science and Technology of China,Chengdu 610054,China

    Keywords: Janus MoSSe monolayer,strain effect,specific capacity,migration behavior

    1. Introduction

    Two-dimensional(2D)materials represented by graphene have received tremendous research enthusiasm.[1–9]Among many 2D materials,transition metal dichalcogenides(TMDs),MX2(M = Mo and W; X = S, Se, and Te),[5,10–14]have emerged in recent years due to their moderate direct band gap, good electronic transport properties, and the coupled spin-valley property.[5,11]Recently,researchers have successfully synthesized new MoS2-like TMDs by chemical vapor deposition, 2D Janus MoSSe. Due to the broken in-plane mirror symmetry, Janus MoSSe possesses the out-of-plane dipole absent in conventional monolayer TMDs.[15,16]Thereupon, a variety of properties of Janus MoSSe monolayer[17]or multilayer MoSSe[18,19]have been widely studied, including electronic structures,[20–22]magnetism,[23,24]phonon transports,[25]photocatalysts,[26–28]and so forth. Unique properties of MoSSe engender a versatility that has a potential application and enabled its use in a wide range of scientific fields,such as thermoelectrics,[29]optoelectronics.[30]

    In addition, Janus MoSSe monolayer is a potential anode material and has appeared in the field of ion battery in recent years.[31–33]Shang et al.[31]calculated the energy barriers of Li-ion on MoSSe surface and suggested that the rate performance of the Janus MoSSe monolayer is comparable to that of graphene and silicene. Zhou et al.[32]reported that heterostructures composed of Janus MoSSe monolayer and graphene as promising anode materials for LIBs. The maximum lithium storage capacity of the heterostructure can be enhanced to 390 mAh/g. And then, He et al.[33]experimentally verified that MoSSe with anion vacancies introduced in situ had been achieved for the first time. The anion vacancies in MoSSe could enhance the electronic conductivity, induce more active sites, and obtain better ion storage performance.Verified through the above works, MoSSe has a bright future to serve as anode material.

    However, previous studies focused on the lithiation reaction in Janus MoSSe anode under zero strain condition. It is well known that the external strain can be easily implemented by introducing a specific substrate in the fabrication of Janus MoSSe monolayer.[34,35]Furthermore, deformation and stress induced by insertion/extraction of Li in electrode materials during the charging/discharging cycle process,[36]which lead the 2D Janus MoSSe monolayer to form buckling or puckered structures,and will affect the electrochemical performance of the electrode. Recent theoretical works explored the effect of strain on the electrochemical performance of 2D electrode materials. For example, Ge et al.[37]systematically studied the effects of strain on the electron-phonon coupling and phonon finite mobility of SnO by using first-principles calculations. Their results show that the compressive strain in the SnO monolayer results in a conduction band minimum(CBM) consisting of two valleys at the Γ point and along the M–Γ line. Hao et al.[38]investigated Li-ion diffusion on strained graphene by using first-principles calculations;the results show that the diffusion coefficient of Li-ion on the plane of stretched graphene is gently reduced compared to without strain,and the effect strongly depends on the magnitude of the strain. Wang et al.[39]studied the adsorption property of Li atoms on C3N under various strains by first-principles method.Hao et al.[40]applied the density functional theory calculations to study the strain effect on the Li-ion diffusion and electronic structure of MoS2;the result shows that the strain can improve electric conductivity that may benefit charge carrier transport.However, to the best of our knowledge, theoretical studies of the effect of different external biaxial strains on the properties of the Janus MoSSe as an anode material for LIBs are scarce. Thus, it is meaningful to study the influence of the electrochemical performance of Janus MoSSe monolayer under strain.

    In this work, we explore the specific capacity, intercalation potential,electronic structures,and electrochemical kinetics of Janus MoSSe monolayer under external strain by using first-principles calculation method. We find that the change of strain has little effect on the maximum storage of Li-ion and the interaction potential.But interestingly,the electrochemical kinetics of Janus MoSSe monolayer will change greatly under different strains. Our results will reveal the Li-ion migration mechanism under strain on the surface of MoSSe and evaluate the strain effect on the charge/discharge process Janus MoSSe monolayer as the anode of LIBs. Our results can help to study MoSSe as an anode for LIBs.

    2. Methodology

    In this paper, all the calculations are performed by using the Vienna ab initio simulation package(VASP)based on density functional theory(DFT).[41]The projector augmented wave(PAW)method is used,and the exchange-correlation effect among electrons is described with generalized gradient approximation(GGA),specifically the functional proposed by Perdew–Burke–Ernzerhof(PBE).[42,43]The Li 1s12s12p1,Mo 4p65s14d5, S 3s23p4, and Se 4s24p4electrons are considered as valence electrons. For the plane-wave basis expansion, a cutoff energy of 500 eV is applied to the wave function. In order to describe the interactions between the adsorbed host 2D materials and Li-ions, a damped van der Waals (vdW)correction (DFT-D2) has been added to the DFT exchangecorrelation functional to incorporate the effect of nonbonding forces.[44,45]The lattice parameters and the ionic positions are fully relaxed until the net force on each atom is less than 0.02 eV/?A. The convergence criterion of the total energy is 10?5eV per atom. The Janus MoSSe monolayer is separated with a 20 ?A vacuum layer in the z-axis direction to avoid the interaction between the periodically repeated structures. We utilize the Monkhorst–Pack k-points mesh of 11×11×1 for primitive cell and 5×5×1 for 3×3 supercell in the structural optimization and other calculations. To study the Li-ion lateral migration on the MoSSe monolayer surface,the climbingimage nudged elastic band(CI-NEB)method[46]is employed to determine the Li-ion migration path and evaluate the energy barrier. The spring constant is set to ?5. Five images are interpolated between the initial and the final states along each pathway in our calculation. The phonon frequencies are calculated by using PHONOPY code,[47]which can directly use the force constant(Hessian matrix)calculated by DFPT,[48]as also implemented in VASP.

    Generally, the adsorption energy Eadis essential for understanding the Li-ion adsorption strength on the 2-D host material. Thus, the amount of Li-storage on the MoSSe monolayer can be evaluated by the sequential adsorption energy,which is defined as

    where Ehost+(n+1)Liand Ehost+nLiare the optimized total ground state energies of the 2-D host with (n+1) and n Liions adsorbed, respectively. ELiis the total energy of an isolated Li atom. According to the definition of Eq.(1),negative adsorption energy indicates that Li-ions are bound to the 2-D host.

    The intercalation potential is positive when the adsorption energy is lower than the cohesive energy of the body-centered cubic(BCC)phase Li-metal. Otherwise, from the thermodynamical point of view,the formation of a Li dendrite is favorable when the intercalation potential becomes negative.Therefore,the theoretical capacity of the 2-D MoSSe monolayer can be evaluated by sequential adsorption energy. The maximum theoretical capacity(CM)can be estimated by the equation

    where x, F, and MMoSSeare the maximum value of electrons during the electrochemical process,the Faraday constant,and the mass of MMoSSe,respectively.

    To further understand the sequential adsorption energy,the intercalation potential V has been evaluated as follows:

    3. Results and discussion

    3.1. The strain effect on structures of the monolayer Janus MoSSe

    A positive value means a tensile strain, while a negative one means a compressive strain. To verify the stability of MoSSe under different strains, we calculated the phonon spectra of MoSSe. The phonon band structure of MoSSe is extracted from a 3×3×1 supercell. Figure 1(b) shows the calculated phonon dispersions relation under ?6%, 0%, and 6% strain.We also tested other strain values;please refer to ESI?,Fig.S1.As shown in Fig.1(b),the phonon spectra of the structure under ?6% and 6% strain show no imaginary frequency in the Brillouin zone of MoSSe monolayer, confirming the stability and thus the possibility of experimental realization.

    Fig.1. (a)Top and side views of MoSSe monolayer with 3×3×1 supercell,and Li-ion adsorption sites on the MoSSe surface. The unit cell is indicated by the parallelogram. Green,yellow,purple,and emerald balls represent Li,S,Mo,and Se atoms,respectively. (b)Phonon dispersions of the MoSSe monolayer under ?6%,0%,and 6%strain,respectively.

    3.2. The effect of strain on the lithium storage performance

    3.2.1. The effect of strain on the specific capacity

    To explore the effect of the strain on the specific capacity of Li-ion,we investigated the adsorption behavior of Li-ion on the Janus monolayer MoSSe under different strains.

    First, we evaluate the adsorption sites and the maximum adsorption capacity of Li-ion on the Janus MoSSe monolayer supercell without strain. For the upper and lower surfaces of the monolayer MoSSe supercell cell, six adsorption sites are available. They are top site of Mo atom (denoted as TMo),top site of S/Se atom(denoted as TS/Se),and hollow site(denoted as H)on the side of the S layer or Se layer,as shown in Fig.1(a). For one Li-ion adsorption, there are six adsorption configurations. After full geometry relaxation, depending on the definition of the adsorption energy in Eq. (1), we calculated the adsorption energy of these six adsorption configurations and listed in Table 1. Results show that the adsorption energy at the TMosite on both the side of the S and Se layer is larger than those at the TS/Seand hollow site,especially the TMosite on the side of the S layer (?2.442 eV). It indicated that Li-ion prefers staying at the TMosite on the S layer.

    Table 1. Adsorption energies(eV)for all Li-adsorption sites of the monolayer MoSSe.

    Fig.2. Top view and side view of the atomic structures of(a)Li1/9MoSSe and(b)Li2MoSSe.

    In order to calculate the maxNum adsorption capacity of a 3×3×1 supercell of monolayer MoSSe for Li-ion,according to Eq.(1),we calculated the sequential adsorption energies of adsorption confgiurations(LixMoSSe)by gradually increasing the amount of Li-ion adsorbed. Our results indicate that the TMosite on the side of the S layer is the frist choice for Li-ion adsorption. So,when more Li-ions are introduced,they prefer to stay on the S layer, until all sites are fully occupied, corresponding to Li1/9MoSSe (see Fig.2(a)). And then, Li ions start to occupy the TMosite on the side of the Se layer, until all the TMoof the S and Se layer are fully occupied by Li-ions,corresponding to Li2MoSSe (see Fig.2(b)). In this adsorption configuration with the adsorption energies close to the cohesive energy of the BCC phase Li-metal (?1.999 eV/atom calculated with the GGA-PBE potential in this study). Generally, if the adsorption energy is lower than ?1.999 eV/atom,Li-ion adsorption on the host is favored, corresponding to a positive discharge potential. Otherwise,Li-metal formation is favored,and discharge potential is negative. Thus,a 3×3×1 supercell of monolayer MoSSe can store as many as 18 Liions,corresponding to Li2MoSSe,as shown in Fig.2(b). The corresponding theoretical capacity is 258.8 mAh/g by Eq.(2).

    Second, we investigated the adsorption behavior of Li atom on the Janus monolayer MoSSe under strain. Similar to section 1,we first examined the adsorption sites of Li atom under strain. The result shows that the Li-ion still prefers staying at the TMosite on the S layer. Whereafter, we calculated the sequential adsorption energies of LixMoSSe under the strains ranging from ?6% to 6%. In order to facilitate comparison,the adsorption energy of LixMoSSe against strain and Li-ion concentration is shown in Fig.3. The black triangle, red circle,and blue square in Fig.3 represent the adsorption energy of LixMoSSe under ?6%,0%,and 6%strain,respectively. As can be seen from Fig.3,the adsorption energies decrease with the Li-ion concentration.This is because the attractive interaction between Li-ions and the host(MoSSe)decreases and the repulsive interactions between the adsorbed Li-ions increase.Interestingly,we can see that the effect of strain on adsorption energy is very small, especially Li1/9MoSSe and Li2MoSSe,there is almost no effect.

    In addition,we calculated the intercalation potential V by Eq.(3). The intercalation potentials are presented in Table 2.As shown in Table 2,when the Li content x is less than 2,the intercalation potential V ranges from 0.123 to 1.205 V under?6%compressive strain,0.034 to 0.442 V without strain,and 0.057 to 0.410 V under 6% tensile strain. The intercalation potential V under other strains is also calculated; please refer to ESI?, Table S1. But when x is greater than 2, the intercalation potential V becomes negative. So,at the maximum unit Li adsorption capacity, the insertion phase is still Li2MoSSe with strain. The corresponding theoretical specific capacity of the Janus monolayer MoSSe still is 258.8 mAh/g.In sum,both compressive and tensile stresses have no effect on the theoretical specific capacity of the Janus monolayer MoSSe. Comparing with 1.0 V for carbon(LixC6)and 1.12 V for graphite,[51]MoSSe is suitable for anode electrode with such a small intercalation potential(0.442–0.034 V).

    Table 2. Intercalation potentials V on MoSSe as functions of the Li content in LixMoSSe under strain(unit: V).

    Fig.3.The sequential adsorption energies as the function of Li content in the LixMoSSe under strain. Black triangles, red circles, and blue squares represent the adsorption energy of LixMoSSe under ?6%,0%,and 6%strain,respectively.

    To study the strain effects on the interaction between Liion and the host (MoSSe) and understand the physical origin of the no change in adsorption energy,we calculated the equilibrium adsorption distance of Li-ion adsorption on MoSSe.Taking Li1/9MoSSe and Li2MoSSe as examples, the adsorption distance against various strains are presented in Figs.4(a)and 4(b). We can see that the adsorption distance of Li on Se surface of MoSSe is less than that on S surface, and the adsorption distance of Li increases under compressive strain and decreases under tensile strain,for the side of the S and Se layer in Li1/9MoSSe and Li2MoSSe. This is not consistent with the change of adsorption energy.

    Whereafter, we calculated the charge transfer of Li-ion adsorption on MoSSe under strain by the Bader charge analysis method.[52]The analysis results are presented in Figs.4(c)and 4(d). The Bader charge of pure MoSSe monolayer under different strains; please refer to ESI?, Fig.S2. A negative value indicates charge depletion, while a positive value represents charge accumulation. As seen from Figs. 4(c) and 4(d),the electron gaining ability of S atom is greater than that of Se, corresponding to that the adsorption distance of the side of S layer is smaller than that of the side of Se layer for the Li-ion. It was found that the charge transfer of Li atom hardly changes with strain. The charge depletion of Li atom is ?0.888 e/per atom for Li1/9MoSSe,and with ?0.770 e/per atom for Li2MoSSe. Therefore, the strain induced charge transfer is mainly between the elements of the adsorbent,i.e.,Mo,S,and Se. The nature of adsorption is the electrostatic attraction between Li and MoSSe. The attraction of S and Se to Li is the main reason for the increase of the adsorption energy,while the repulsion of Mo is the main reason for the decrease of the adsorption energy. When the strain is applied,although the number of electron gain of S and Se atom increases with the strain,the electron loss of Mo atom also increases with the strain, causing both attraction and repulsion to increase. Accordingly,the adsorption energy barely relies on the strain.

    Fig.4. The equilibrium adsorption distance of Li-ion on(a)Li1/9MoSSe and(b)Li2MoSSe under different strains. The gain or loss of Li,Mo,S,and Se atoms in(c)Li1/9MoSSe and(d)Li2MoSSe with compressive,without,and with tensile strains(unit: e/per atom).

    3.2.2. The effect of strain on electronic structures of lithiated monolayer MoSSe

    To study the strain effects on the electronic properties,we calculated the total density of states(TDOS)of the adsorption phases LixMoSSe, from which we can learn more about the physical origin of the strain effect. Figure 5 shows the TDOS of MoSSe,Li1/9MoSSe,and Li2MoSSe under various strains.As shown in the dark gray area in Fig.5, we have found that MoSSe is a semiconductor with a band gap of 1.018 eV.When a ?6%strain is applied, TDOS of MoSSe shows that the energy gap is slightly reduced to 0.768 eV,whereas a 6%tensile strain is applied, TDOS of MoSSe shows the band gap disappears and reaches a metallic state, which may be a great benefit to charge carrier transport for potential applications in ion batteries and other electronic devices. When Li atoms are adsorbed, the density of states at the Fermi level increases with the Li contents, leading to increasingly metallic properties of LixMoSSe, as shown in Fig.5. This indicates that Li atom provides more active electrons. It is noteworthy that both compressive and tensile stresses have little effect on the density of states of LixMoSSe at the Fermi level. The DOS of Li1/9MoSSe and Li2MoSSe under other strains are tested;please refer to ESI?,Fig.S3.

    Fig.5. TDOS of Janus MoSSe monolayer,Li1/9MoSSe and Li2MoSSe.

    3.2.3. The effect of strain on Li-ion diffusion on monolayer MoSSe

    Diffusion of Li-ion on MoSSe surface plays a key role in circuit rate performance of batteries. To investigate the strain effects on the Li-ion diffusion on MoSSe surface, we calculated the Li-ion migration on MoSSe without strain and with ?6%, 6% of strain by CI-NEB method. As we know,the diffusion coefficient and migration energy barrier of Liion are dependent on Li concentrations. For simplicity, here we study two extreme cases: Li-ion and Li-vacancy migration, corresponding to the Li diffusion behavior in Li-poor state(Li1/9MoSSe)and Li-rich phase(Li17/9MoSSe),respectively. Figures 6 and 7 show the migration paths and energy barriers of one Li-ion and Li-vacancy migration on the MoSSe with ?6%,0%,and 6%strain.For other strain’s values,please refer toESI?,Figs.S4 and S5.

    For the case of Li-ion migration, without strain, we can see that Li-ion migrates from the most stable TMosite to the nearest neighbor TMosite through a metal-stable site (H) on both the side of the S layer and Se layer of MoSSe. During this migration process, Li has to overcome an energy barrier of 0.316 and 0.239 eV on the side of the S layer and Se layer of MoSSe(see Fig.6(c)),respectively. With a ?6%compressive strain,Li follows the same migration path,but the energy barriers decrease to 0.267 and 0.216 eV (see Fig.6(b)). In comparison, the energy barriers of Li ions increase to 0.328 and 0.356 eV with a 6%tensile strain(see Fig.6(d)).

    For the case of Li-vacancy migration,we can see that Li vacancy follows the same migration path on Li17/9MoSSe,but the energy barriers have increased. Without strain, as shown in Fig.7(c),the migration energy of Li vacancy on the S layer and Se layer are 0.581 and 0.364 eV, respectively. There is the same effect of strain on energy barriers of Li vacancy migration, as shown in Figs. 7(b) and 7(d). With ?6% of compressive strain, the energy barriers of Li-vacancy on the side of the S layer and Se layer of MoSSe are reduced to 0.403 and 0.297 eV,respectively. The opposite aspect is that the migration energy barriers of Li-vacancy increase to 0.584 and 0.588 eV with 6%of tensile strain.

    Figure 8 present the migration energy barriers of Li-ions and Li-vacancy against strain. We can see that the migration barrier on Se surface of MoSSe is lower than that on S surface.This is mainly because the adsorption distance of Li on Se surface of MoSSe is greater than that on S surface, as shown in Figs. 4(a) and 4(b). In the process of Li-ion migration, the electrostatic interaction to be overcome is small. Note that the compressive strain tends to affect the fast diffusion of Li on MoSSe, and the effect of strain on Se surface is greater than that on S surface. For example,the migration energy barriers of Li-ion on the side of S layer decrease from 0.32 eV without strain to 0.26 eV with ?6%compressive strain. However,tensile strain turns to increase the migration barrier,especially the migration of Li-vacancy in lithium-rich phase,such as the migration energy barriers of Li-vacancy on the side of Se layer increase from 0.35 eV without strain to 0.56 eV with 6%tensile strain. This can also be explained by the variation of adsorption distances with strains. The adsorption distance increases under compressive strains and decreases under tensile strains.This is not consistent with the effect law of strain on MoS2.A 6%strain increases the migration barrier of Li-ion on MoS2by only 0.01 eV,indicating little influence on Li diffusion.

    Fig.6. Migration path and energy barriers:(a)for one Li-ion migration on the MoSSe monolayer,(b)–(c)for energy profile of Li-ion diffusion with?6%,0%,and 6%strain,respectively.

    Fig.7. Migration path and energy barriers: (a)for one Li-vacancy migration on 17 Li adsorbed on the MoSSe monolayer,(b)–(c)for energy profile of Li-vacancy diffusion with ?6%,0%,and 6%strain,respectively.

    Fig.8. The variation of(a)one Li-ion and(b)one Li-vacancy migration energy barriers as a function of the applied external strain.

    Fig.9. PES of Li diffusion on Janus MoSSe monolayer with(a)?6%,(b)0%,and(c)6%of strain. The red arrow is the minimum energy path of Li migration.

    In order to further explain the effect law of strain on the Li migration,we calculated the potential energy surface(PES)of Li diffusion on MoSSe with ?6%of strains,without strain,and with 6% of strain. Here, PES is calculated by fixing the adsorbed ions laterally at different positions and allowing all other atoms and the ion height to relax. In our study,we constructed 20 structures along zigzag and armchair directions of MoSSe and optimized a total of 400 structures to obtain the relative energy with reference to the lowest energy at the most stable adsorption site. Figures 9(a), 9(b) and 9(c) show the PES and Li diffusion path of Li migration on MoSSe under?6%, 0%, and 6% strain, respectively. As shown in Fig.9,with the increase of tensile strain, a darker color of S site shows a higher PES of S atom. At this time, the color of the blue central region of the six-membered ring composed of Mo and S atoms is gradually deepening from compressive strain to tensile strain,and the part is the minimum energy path of Liion. This shows that the PES of the migration path increases with the stress,which leads to the increase of Li-ion migration barrier(see Fig.9(c)).

    4. Conclusion

    In summary,we performed systematic first-principles calculations to explore the strain effects on the specific capacity,intercalation potential,electronic structures,and migration behavior of Li-ion on MoSSe in the context of ion batteries. Our results show that both compressive and tensile stresses have little effect on the theoretical specific capacity of the Janus MoSSe monolayer. We have found that strain has a great effect on the electronic structure of MoSSe. For example,when a 6%tensile strain is applied,TDOS of MoSSe shows the band gap disappears and achieves a metallic state,which may be of great benefit to charge carrier transport for potential applications in ion batteries. Strain also has a certain effect on the adsorbed MoSSe(LixMoSSe),but the effect is small. For the Li migration behavior, the compressive strain tends to affect the fast diffusion of Li on MoSSe, and the effect of strain on Se surface is greater than that on S surface. This can be explained by the variation of adsorption distance and potential energy surface with strains. Overall, the above results show the prospect of applying strain to energy-related technology and provide theoretical guidance for exploring the effect of strain on electrode materials.

    猜你喜歡
    文靜王國(guó)
    一滴水中的王國(guó)
    地下王國(guó)
    完形填空題匯編
    待哺
    她的2000億打工王國(guó)
    逃離鼠王國(guó)
    呵護(hù)
    An analysis of Speech Act Theory in Horton Hears a Who
    西部論叢(2019年10期)2019-03-20 05:18:14
    建立新王國(guó)
    NBA特刊(2018年21期)2018-11-24 02:47:48
    Lexical Approach in Language Teaching and Learning
    国产精品国产三级国产av玫瑰| 十八禁国产超污无遮挡网站| 永久网站在线| 亚洲av一区综合| 国产精品.久久久| 国产大屁股一区二区在线视频| 亚洲无线在线观看| 精品久久久久久久久亚洲| 国产探花在线观看一区二区| 日韩欧美一区二区三区在线观看| 欧美最新免费一区二区三区| 深爱激情五月婷婷| 最好的美女福利视频网| 亚洲人成网站在线播放欧美日韩| 色吧在线观看| 日本三级黄在线观看| 午夜福利视频1000在线观看| 只有这里有精品99| 欧美色欧美亚洲另类二区| 中文字幕熟女人妻在线| 欧美bdsm另类| 国产一级毛片七仙女欲春2| 亚洲人成网站在线观看播放| 女人被狂操c到高潮| 一级毛片我不卡| 国产黄a三级三级三级人| 亚洲乱码一区二区免费版| 99视频精品全部免费 在线| 尤物成人国产欧美一区二区三区| 日韩强制内射视频| 黑人高潮一二区| 日本色播在线视频| 在线观看66精品国产| 啦啦啦观看免费观看视频高清| 国产精品一二三区在线看| 国产成人91sexporn| 日本免费一区二区三区高清不卡| 色综合色国产| 国产在线男女| 又爽又黄无遮挡网站| 久久久色成人| 久久6这里有精品| 热99在线观看视频| ponron亚洲| 国产熟女欧美一区二区| 精品人妻一区二区三区麻豆| 久久国内精品自在自线图片| 国产一区二区在线av高清观看| av在线蜜桃| 国产探花在线观看一区二区| 欧美另类亚洲清纯唯美| 1024手机看黄色片| 两个人视频免费观看高清| 国产成人精品婷婷| 黄片无遮挡物在线观看| 白带黄色成豆腐渣| 成人一区二区视频在线观看| 99热这里只有精品一区| 午夜激情欧美在线| av卡一久久| 中国国产av一级| 十八禁国产超污无遮挡网站| 一级毛片电影观看 | 午夜福利在线观看吧| a级毛色黄片| 最近中文字幕高清免费大全6| 免费电影在线观看免费观看| 人妻制服诱惑在线中文字幕| 日韩av在线大香蕉| 亚洲国产欧美在线一区| 欧美日韩精品成人综合77777| 波多野结衣高清无吗| 大香蕉久久网| 亚洲三级黄色毛片| 日本一本二区三区精品| 夜夜夜夜夜久久久久| 久久午夜福利片| 国产一区二区三区在线臀色熟女| 欧美日本亚洲视频在线播放| 日韩国内少妇激情av| 日韩欧美国产在线观看| 老司机福利观看| 少妇人妻精品综合一区二区 | 免费不卡的大黄色大毛片视频在线观看 | 小说图片视频综合网站| kizo精华| 免费观看精品视频网站| 99久久人妻综合| 麻豆乱淫一区二区| 国产精品人妻久久久影院| 亚洲精品自拍成人| 免费观看在线日韩| 亚洲成人av在线免费| 色尼玛亚洲综合影院| 禁无遮挡网站| 中文字幕熟女人妻在线| 在线观看一区二区三区| 91久久精品电影网| 99视频精品全部免费 在线| 亚洲在久久综合| 国产亚洲精品av在线| 美女被艹到高潮喷水动态| 亚洲第一电影网av| 国产精品蜜桃在线观看 | 蜜桃久久精品国产亚洲av| 性欧美人与动物交配| 亚洲av免费高清在线观看| 国产高清有码在线观看视频| 亚洲熟妇中文字幕五十中出| 国内揄拍国产精品人妻在线| 精华霜和精华液先用哪个| 欧美区成人在线视频| 高清在线视频一区二区三区 | 国内少妇人妻偷人精品xxx网站| 亚洲在久久综合| 亚洲欧美成人精品一区二区| 久久久久久久久久久丰满| 欧美成人精品欧美一级黄| 亚洲欧美清纯卡通| 亚洲av一区综合| av在线播放精品| 一级毛片久久久久久久久女| 亚洲精品色激情综合| 婷婷六月久久综合丁香| 亚洲精品日韩av片在线观看| 日日啪夜夜撸| 日韩一本色道免费dvd| 国产亚洲精品久久久久久毛片| 校园春色视频在线观看| 日韩亚洲欧美综合| 毛片女人毛片| 免费观看a级毛片全部| 国内精品美女久久久久久| 亚洲在久久综合| 亚洲三级黄色毛片| 国产精品乱码一区二三区的特点| 尤物成人国产欧美一区二区三区| 国产精品一二三区在线看| 在线免费十八禁| 一本久久中文字幕| 欧美zozozo另类| 色综合站精品国产| 超碰av人人做人人爽久久| 日本色播在线视频| 欧美区成人在线视频| 色综合色国产| 国产伦在线观看视频一区| 熟女人妻精品中文字幕| a级毛片免费高清观看在线播放| 亚洲精品色激情综合| 在线观看一区二区三区| 99久久九九国产精品国产免费| 欧美3d第一页| 久久国内精品自在自线图片| 91久久精品国产一区二区三区| 国产一区亚洲一区在线观看| 3wmmmm亚洲av在线观看| 久久热精品热| 国产一级毛片七仙女欲春2| h日本视频在线播放| 少妇熟女aⅴ在线视频| 亚洲性久久影院| 中文资源天堂在线| 国产 一区 欧美 日韩| 91精品国产九色| 国产精品久久久久久久久免| 性欧美人与动物交配| 久久久久网色| 插阴视频在线观看视频| 久久国内精品自在自线图片| 国产成人aa在线观看| 51国产日韩欧美| 久久久久性生活片| 亚洲av电影不卡..在线观看| 婷婷色av中文字幕| 亚洲一区高清亚洲精品| 亚洲一区高清亚洲精品| 嘟嘟电影网在线观看| 亚洲成a人片在线一区二区| 亚洲成a人片在线一区二区| 如何舔出高潮| 91精品国产九色| 三级毛片av免费| 青春草国产在线视频 | 午夜爱爱视频在线播放| 成人午夜高清在线视频| 国产精品久久视频播放| 美女cb高潮喷水在线观看| 最近手机中文字幕大全| 国产av一区在线观看免费| 亚洲av熟女| 少妇猛男粗大的猛烈进出视频 | 国国产精品蜜臀av免费| 我要看日韩黄色一级片| 一夜夜www| 亚洲婷婷狠狠爱综合网| 男插女下体视频免费在线播放| 一级毛片我不卡| 1024手机看黄色片| 简卡轻食公司| 麻豆av噜噜一区二区三区| 国产91av在线免费观看| 中文在线观看免费www的网站| 天堂网av新在线| 国产在线男女| 伊人久久精品亚洲午夜| 成人高潮视频无遮挡免费网站| 啦啦啦观看免费观看视频高清| 日韩视频在线欧美| 午夜视频国产福利| 熟妇人妻久久中文字幕3abv| 欧美+日韩+精品| 国产精品一区二区三区四区免费观看| 国产精品久久久久久久电影| 亚洲欧美精品自产自拍| 日本五十路高清| 丰满的人妻完整版| 有码 亚洲区| 99热网站在线观看| 久久精品夜夜夜夜夜久久蜜豆| 国产探花极品一区二区| 欧美三级亚洲精品| 国产午夜精品久久久久久一区二区三区| ponron亚洲| 日本五十路高清| 久久热精品热| 日本五十路高清| 少妇被粗大猛烈的视频| 国产色婷婷99| 亚洲在线观看片| 91狼人影院| 成人特级黄色片久久久久久久| 少妇熟女aⅴ在线视频| 夫妻性生交免费视频一级片| 边亲边吃奶的免费视频| 亚洲精品日韩av片在线观看| 一级二级三级毛片免费看| 91久久精品国产一区二区成人| 亚洲精品国产成人久久av| 国产精品久久久久久av不卡| 亚洲高清免费不卡视频| 亚洲aⅴ乱码一区二区在线播放| 欧美zozozo另类| 久久精品国产亚洲网站| 亚洲在线自拍视频| 可以在线观看毛片的网站| 国产成人午夜福利电影在线观看| 日韩在线高清观看一区二区三区| 久久亚洲国产成人精品v| 精品少妇黑人巨大在线播放 | 国产 一区 欧美 日韩| 国产成人午夜福利电影在线观看| 岛国毛片在线播放| 人妻夜夜爽99麻豆av| 97人妻精品一区二区三区麻豆| 97超视频在线观看视频| 少妇裸体淫交视频免费看高清| 好男人视频免费观看在线| 国产麻豆成人av免费视频| 人妻久久中文字幕网| 黄色欧美视频在线观看| 亚洲,欧美,日韩| 国产成人精品久久久久久| 中文欧美无线码| 久久人人爽人人爽人人片va| 观看美女的网站| 欧美成人一区二区免费高清观看| 免费在线观看成人毛片| 午夜精品一区二区三区免费看| 日韩欧美在线乱码| 久久精品国产亚洲av涩爱 | 亚洲自偷自拍三级| 亚洲七黄色美女视频| 少妇熟女欧美另类| 99久国产av精品| 中文字幕久久专区| 人妻制服诱惑在线中文字幕| 成年女人看的毛片在线观看| 91aial.com中文字幕在线观看| 99热网站在线观看| 国产一区二区三区在线臀色熟女| 亚洲av免费高清在线观看| 亚洲久久久久久中文字幕| 国产高清三级在线| 高清毛片免费看| 欧美高清成人免费视频www| 变态另类成人亚洲欧美熟女| 欧美+亚洲+日韩+国产| 高清日韩中文字幕在线| 美女xxoo啪啪120秒动态图| 一区二区三区免费毛片| 秋霞在线观看毛片| av黄色大香蕉| 欧美+日韩+精品| 22中文网久久字幕| 国产精品一及| 狠狠狠狠99中文字幕| 日韩 亚洲 欧美在线| 久久久a久久爽久久v久久| 国产伦一二天堂av在线观看| 婷婷精品国产亚洲av| 蜜臀久久99精品久久宅男| 哪里可以看免费的av片| 六月丁香七月| 18禁在线无遮挡免费观看视频| 99久久精品国产国产毛片| 国产91av在线免费观看| 国产欧美日韩精品一区二区| 国产探花极品一区二区| 国产三级中文精品| 中文精品一卡2卡3卡4更新| 免费人成视频x8x8入口观看| 在线免费观看不下载黄p国产| 精品久久久久久久久久久久久| 久久精品国产亚洲av涩爱 | 午夜亚洲福利在线播放| 最近的中文字幕免费完整| 精品久久久久久久久久免费视频| 亚洲色图av天堂| 久久99蜜桃精品久久| 国国产精品蜜臀av免费| 久久国内精品自在自线图片| 一卡2卡三卡四卡精品乱码亚洲| 日日摸夜夜添夜夜添av毛片| 99久久久亚洲精品蜜臀av| 国产精品免费一区二区三区在线| 欧美zozozo另类| 中出人妻视频一区二区| 蜜桃亚洲精品一区二区三区| 中文字幕av在线有码专区| 在线天堂最新版资源| 97超视频在线观看视频| 日本欧美国产在线视频| a级毛色黄片| 国产色婷婷99| 老熟妇乱子伦视频在线观看| 久久精品91蜜桃| 97超视频在线观看视频| 69av精品久久久久久| 成人二区视频| 国产在视频线在精品| 久久久久国产网址| 国产三级在线视频| 亚洲精品国产成人久久av| 亚洲欧美中文字幕日韩二区| 国产精品麻豆人妻色哟哟久久 | 日日撸夜夜添| 久久久久久伊人网av| 搡老妇女老女人老熟妇| 最近的中文字幕免费完整| 久久久欧美国产精品| 在线观看av片永久免费下载| 99热只有精品国产| 成人午夜高清在线视频| 欧美成人精品欧美一级黄| 国产午夜精品论理片| 日产精品乱码卡一卡2卡三| 狂野欧美激情性xxxx在线观看| 久久人人爽人人片av| 91狼人影院| 五月伊人婷婷丁香| 男女视频在线观看网站免费| 久久精品国产鲁丝片午夜精品| 三级男女做爰猛烈吃奶摸视频| 日韩制服骚丝袜av| 久久韩国三级中文字幕| 校园春色视频在线观看| 白带黄色成豆腐渣| 国产精品av视频在线免费观看| av在线播放精品| 干丝袜人妻中文字幕| 联通29元200g的流量卡| 国产一级毛片七仙女欲春2| 床上黄色一级片| 一级黄片播放器| 欧美潮喷喷水| 中文亚洲av片在线观看爽| 久久精品久久久久久噜噜老黄 | 亚洲自偷自拍三级| 日本欧美国产在线视频| 天堂网av新在线| 99久久久亚洲精品蜜臀av| АⅤ资源中文在线天堂| 精品欧美国产一区二区三| 99热精品在线国产| 欧美+亚洲+日韩+国产| 中文字幕熟女人妻在线| 国产亚洲欧美98| 麻豆成人av视频| www日本黄色视频网| 一个人观看的视频www高清免费观看| 高清毛片免费看| 九九在线视频观看精品| 国产精品人妻久久久影院| 成人av在线播放网站| 少妇的逼水好多| 神马国产精品三级电影在线观看| 成人漫画全彩无遮挡| 嘟嘟电影网在线观看| 99久久九九国产精品国产免费| 九九久久精品国产亚洲av麻豆| 能在线免费看毛片的网站| 国产成人a区在线观看| 日韩欧美 国产精品| 国产私拍福利视频在线观看| 久久国内精品自在自线图片| 日韩一区二区视频免费看| 久久99蜜桃精品久久| 毛片一级片免费看久久久久| 麻豆精品久久久久久蜜桃| 国产精品人妻久久久久久| 久久国产乱子免费精品| 一区二区三区免费毛片| 国产高清三级在线| 神马国产精品三级电影在线观看| 久久久精品欧美日韩精品| 91精品国产九色| av福利片在线观看| 又粗又硬又长又爽又黄的视频 | 九九爱精品视频在线观看| 黄色一级大片看看| 久久这里只有精品中国| 亚洲av免费高清在线观看| 日韩在线高清观看一区二区三区| 欧美日韩精品成人综合77777| 国模一区二区三区四区视频| 国产色爽女视频免费观看| 边亲边吃奶的免费视频| 噜噜噜噜噜久久久久久91| 蜜桃久久精品国产亚洲av| 国产精品一区二区性色av| 18禁在线播放成人免费| 尤物成人国产欧美一区二区三区| 一进一出抽搐gif免费好疼| 嫩草影院新地址| 国产综合懂色| 欧美又色又爽又黄视频| 女人十人毛片免费观看3o分钟| 精品久久久久久成人av| 在线天堂最新版资源| 黄色视频,在线免费观看| 直男gayav资源| 欧美精品一区二区大全| a级毛片a级免费在线| 人妻久久中文字幕网| 身体一侧抽搐| 中国国产av一级| 精品99又大又爽又粗少妇毛片| 九九在线视频观看精品| 成人特级av手机在线观看| 国产视频内射| 亚洲成人av在线免费| 精品久久国产蜜桃| 国产精品蜜桃在线观看 | 久久鲁丝午夜福利片| 亚洲欧美精品专区久久| 在线观看美女被高潮喷水网站| 99久久成人亚洲精品观看| 日韩人妻高清精品专区| 两个人视频免费观看高清| 国产综合懂色| 2022亚洲国产成人精品| 亚洲五月天丁香| 午夜视频国产福利| 成人国产麻豆网| 久99久视频精品免费| 亚洲国产精品合色在线| 波多野结衣高清作品| 桃色一区二区三区在线观看| 人人妻人人澡人人爽人人夜夜 | 最近中文字幕高清免费大全6| 观看免费一级毛片| 久久九九热精品免费| 蜜桃久久精品国产亚洲av| 男的添女的下面高潮视频| 亚洲国产精品成人综合色| 波多野结衣巨乳人妻| 免费av毛片视频| 桃色一区二区三区在线观看| 美女脱内裤让男人舔精品视频 | 日本三级黄在线观看| 欧美区成人在线视频| 激情 狠狠 欧美| 日本在线视频免费播放| 日韩人妻高清精品专区| 一个人观看的视频www高清免费观看| 欧美最黄视频在线播放免费| 久久精品国产自在天天线| 精品欧美国产一区二区三| 亚洲欧美日韩东京热| 国产黄a三级三级三级人| 晚上一个人看的免费电影| 一进一出抽搐gif免费好疼| 免费搜索国产男女视频| 国产在线男女| 在线观看一区二区三区| 最近的中文字幕免费完整| 亚洲色图av天堂| 欧美一区二区国产精品久久精品| 日本在线视频免费播放| 亚洲真实伦在线观看| 禁无遮挡网站| 久久鲁丝午夜福利片| 男女边吃奶边做爰视频| 乱码一卡2卡4卡精品| 久久99蜜桃精品久久| 在现免费观看毛片| .国产精品久久| 国产黄色小视频在线观看| 天堂av国产一区二区熟女人妻| 美女国产视频在线观看| 99久国产av精品| 国产极品天堂在线| 国产亚洲精品久久久com| 日韩国内少妇激情av| 麻豆国产97在线/欧美| 亚洲人成网站在线播| 自拍偷自拍亚洲精品老妇| 精品一区二区三区视频在线| 看十八女毛片水多多多| 综合色av麻豆| 国产日韩欧美在线精品| 男人舔女人下体高潮全视频| 国产日本99.免费观看| 国产成人精品久久久久久| 91久久精品国产一区二区成人| 久久久欧美国产精品| 国产男人的电影天堂91| 99久久人妻综合| 最好的美女福利视频网| 麻豆国产av国片精品| 九九在线视频观看精品| 91在线精品国自产拍蜜月| 欧美变态另类bdsm刘玥| 国产成年人精品一区二区| 中文字幕免费在线视频6| 午夜福利高清视频| 午夜老司机福利剧场| 亚洲国产日韩欧美精品在线观看| 国产精品人妻久久久影院| 亚洲人成网站在线播| 久久99蜜桃精品久久| 久久人人爽人人片av| 国产精品综合久久久久久久免费| 一边摸一边抽搐一进一小说| 人妻制服诱惑在线中文字幕| 国产精品精品国产色婷婷| 成人欧美大片| 中文精品一卡2卡3卡4更新| 国产大屁股一区二区在线视频| 精品国产三级普通话版| 桃色一区二区三区在线观看| 亚洲精品自拍成人| 亚洲av免费高清在线观看| 人体艺术视频欧美日本| 一级二级三级毛片免费看| 免费人成在线观看视频色| 国产精品国产三级国产av玫瑰| 国产精品久久电影中文字幕| 深夜a级毛片| 99热这里只有是精品在线观看| 在线观看av片永久免费下载| 一本一本综合久久| 亚洲中文字幕日韩| 一区二区三区免费毛片| 色综合色国产| 亚洲七黄色美女视频| 欧美人与善性xxx| 欧美性感艳星| 91精品一卡2卡3卡4卡| 欧美性猛交黑人性爽| 美女被艹到高潮喷水动态| 五月玫瑰六月丁香| 国产亚洲av片在线观看秒播厂 | 亚洲精品粉嫩美女一区| 欧美一级a爱片免费观看看| 国产精品一区二区三区四区久久| 真实男女啪啪啪动态图| 国产蜜桃级精品一区二区三区| 成年av动漫网址| 日韩精品有码人妻一区| 久久草成人影院| 中文欧美无线码| 啦啦啦啦在线视频资源| 国产女主播在线喷水免费视频网站 | 最近的中文字幕免费完整| ponron亚洲| 精品人妻熟女av久视频| 国产精品综合久久久久久久免费| 麻豆国产av国片精品| 国产免费一级a男人的天堂| 日韩亚洲欧美综合| 我的老师免费观看完整版| 老司机影院成人| 日本成人三级电影网站| 国模一区二区三区四区视频| 亚洲成人av在线免费| 亚洲高清免费不卡视频| 欧美人与善性xxx| 搡老妇女老女人老熟妇| 伊人久久精品亚洲午夜| 欧美激情在线99| 亚洲色图av天堂| videossex国产| 在线天堂最新版资源| 毛片女人毛片| 亚洲成人久久性| 最近2019中文字幕mv第一页| 91午夜精品亚洲一区二区三区| 欧美在线一区亚洲| 一本精品99久久精品77| 丰满的人妻完整版| 又黄又爽又刺激的免费视频.| 国国产精品蜜臀av免费| 女人十人毛片免费观看3o分钟|