• <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 ?

    Emerging properties of two-dimensional twisted bilayer materials?

    2019-11-06 00:46:12YangCheng程陽ChenHuang黃琛HaoHong洪浩ZixunZhao趙子荀andKaihuiLiu劉開輝
    Chinese Physics B 2019年10期
    關(guān)鍵詞:程陽

    Yang Cheng(程陽),Chen Huang(黃琛),Hao Hong(洪浩),Zixun Zhao(趙子荀),and Kaihui Liu(劉開輝)

    State Key Laboratory for Mesoscopic Physics,Academy for Advanced Interdisciplinary Studies,School of Physics,Peking University,Beijing 100871,China

    Keywords:two-dimensional materials,twist angle,moiré potential,interlayer coupling

    1.Introduction

    The concept of 2D materials is prevailing accompanied with the discovery of graphene,[1,2]which opens up a new field of material science. 2D materials have many unique physical properties,such as the Dirac cone band structure of monolayer graphene,valley-selective polarized light absorption of transition metal dichalcogenide(TMD),great insulation of hexagonal boron nitride(hBN),and so on.[3–5]Benefitting from the abundance of 2D monolayers,the heterostructures,built by different layer stacking,form a new big family.In sharp contrast to conventional bulk materials,lack of dangling bonds at the surface greatly facilitates the building of heterostructures without further consideration of the lattice mismatch.When one layer is stacked on another forming bilayer,their different lattice vectors can lead to the formation of superlattice,and the electrons in the system will feel an additional potential called moiré periodic potential(Fig.1).Also,surface-exposed electronic states and quantum confinement significantly enhance the interlayer electronic coupling.The moiré periodic potential and enhanced electronic coupling not only tune the intrinsic behavior of the component layers,but also bring many novel physical properties appearing at the interface such as Mott-insulator state,unconventional superconductivity,and moiré excitons.[6–11]Furthermore,these two mechanisms bring us a new approach to engineering the properties of 2D bilayer materials by tuning the interfacial twist angle.With interfacial twist angle tuning,real-space rotation introduces the evolution of moiré pattern and moiré periodic potential,reciprocal-space rotation introduces band alignment change and finally tunes the interlayer coupling.

    Fig.1.Moiré patterns and enhanced interlayer coupling in 2D twisted bilayer materials.(a)–(c)Configurations of AA stacking/twisted/AB stacking hexagonal lattice bilayers.(d)Schematics of moiré patterns of 5?twisted bilayer graphene.(e)Schematics of interlayer couping in 2D twisted bilayer materials.

    In this review,we discuss the topic of the 2D twisted bilayer materials,particularly concentrating on how the twist angle determines the physical properties. First,we summarize different methods to fabricate twisted bilayers under different conditions.Then,three typical material systems are discussed:twisted bilayer graphene,graphene/hBN heterostructures,and TMD bilayers.At last,we give our perspectives on the study and applications of 2D twisted bilayer materials.

    2.Fabrication of 2D twisted bilayer materials

    Fabrication is the first and most fundamental step in material science research.Mainly two challenges exist in the fabrication process of 2D twisted bilayer materials:accurately controlling interfacial twist angle and building clean interface.Generally,if we do not care much about the accuracy of the twist angle,crude methods can satisfy our demands.Common wet transfer or dry transfer method can be used to fabricate twisted bilayer,where polymer is used to pick up one layer from its substrate and stack the layer on another. However,in this way the interface is not clean enough.[12–15]As shown in Fig.2(a),direct chemical vapor deposition(CVD)method can also be used to grow TMD bilayers with different twist angles.[16]In this process,twisted bilayer(non 0?/60?twist angle)is a by-product of high-symmetry-stacking heterostructures. The value of the twist angle can be obtained directly according to their relative geometry.Although CVD method can guarantee the clean interface,it gives random twist angle which is uncontrollable.Figure 2(b)illustrates the process used to fabricate magic-angle twisted bilayer graphene.[17]The maximum magic angle is less than 1.1?,[18]so the fabrication process must be more delicate.The so-called‘tear&stack’technique,first proposed by Kim et al.,[19]is essentially a modified dry transfer method used for twist angle control.Independently,utilizing the strong van der Waals interaction between hBN and graphene,Cao et al.tore half of one piece of monolayer graphene vertically from the substrate,and then rotated the substrate by the largest magic angle with an accuracy of about 0.1?. At last they stacked the first half on the remaining monolayer to form twisted bilayer and picked it up from the substrate.In this process,hBN was used instead of polymer to obtain a cleaner interface compared to common dry transfer method.[20]

    In contrast to the methods mentioned above,twisted graphene/hBN heterostructures can be fabricated in other ways as reported,and such methods allow one to regulate the twist angle after fabrication. As shown in Fig.2(c),utilizing the weak friction between hBN and graphene,atomic force microscope(AFM)tip can be used to control the twist angle of the heterostructures mechanically.[21,22]In this process,graphene is placed on top of hBN with a large twist angle to avoid disturbance.Then the graphene layer is etched into a Hall bar with oxygen plasma for electronic measurements,and a preshaped hBN flake is transferred onto the graphene.Thus AFM tip can rotate the preshaped flake to control the twist angles after fabrication.In addition,utilizing the potential difference among heterostructures with different twist angles,thermal annealing is also adopted as shown in Fig.2(d).[21,23]

    Fig.2.Fabrication methods.(a)Top:illustration of CVD growth of vertical WS2/MoS2 bilayers.Bottom:schematic illustration,optical image,and scanning electron microscopy image of vertical WS2/MoS2 bilayers.Reprinted with permission from Ref.[16].Copyright 2016,Nature Publishing Group.(b)Schematic illustration of‘tear&stack’technique,which is essentially a modified dry transfer method to fabricate clean interface with accurate twist angle.Reprinted with permission from Ref.[17].Copyright 2016,American Physical Society.(c)Schematic illustration and AFM images of the twist-angle-tunable graphene/hBN heterostructures.Reprinted with permission from Ref.[22].Copyright 2018,American Association for the Advancement of Science.(d)Top:AFM images of graphene/hBN heterostructures before(left)and after(right)annealing.Bottom:AFM images of graphene/hBN heterostructures.They are obtained initially(left),after AFM tip control(middle),and after long-time annealing(right),respectively.Reprinted with permission from Ref.[23].Copyright 2016,Nature Publishing Group.Reprinted with permission from Ref.[21].Copyright 2016,American Physical Society.

    3.Physical properties of 2D twisted bilayer materials

    3.1.Twisted bilayer graphene

    Monolayer graphene is a 2D Dirac semimetal with many unique properties,such as massless Dirac fermion,high carrier mobility,and wide-spectrum light absorption compared to the conventional materials.[24]As for common intrinsic Bernal stacked bilayer graphene(AB stacking),the bandgap remains zero while the fermion becomes massive.[3]However,when taking the twist angle into consideration,new physical phenomena have been found and investigated in twisted bilayer graphene.

    3.1.1.New van Hove singularities

    As shown in Fig.3(a),it has been reported that within a broad range(from 1?to 10?)of twist angles,two robust new van Hove singularities arise owing to the hybridization of the energy bands of these two layers.[25–27]The energy level of the two van Hove singularities can be obtained by scanning tunneling spectroscopy(STS),while the experimental results of the energy separation between them(?E)accord with the theoretical prediction(based on the continuum model)[28,29]

    where vFis the Fermi velocity of monolayer graphene,Γ K is the wave vector of the Dirac point in reciprocal space of graphene,θ is the twist angle,and tθis the amplitude of the main Fourier component of the interlayer potential. The effect of such band structure can also be observed in optical spectroscopy,like absorption spectra,angle-resolved Raman imaging,and angle-tunable photoluminescence with resonant 2-photon excitation.[30–33]The van Hove singularity boosts the density of states of materials,and thus provides a strong light–matter interaction in twisted bilayer graphene.It has been reported that twisted bilayer graphene can enhance the signal in ultrafast photodetection utilizing this property.[34]

    Fig.3. Physical properties of twisted bilayer graphene. (a)Schematic illustration and STS results of the new van Hove singularities of twisted bilayer graphene.The interlayer interaction leads to the formation of van Hove singularities,and they correspond to the two peaks in STS measurements.The relation between the singularity energy separation and the twist angle is also shown.Reprinted with permission from Ref.[27]. Copyright 2012,American Physical Society. (b)Left,calculated band structure and density of states of twisted bilayer graphene with twist angle θ=1.05?. Top right,two-probe longitudinal conductance results of twisted bilayer graphene with twist angle θ=1.16?.Insulating states have been marked by background color.Bottom right,four-probe longitudinal resistance results of two twisted bilayer graphene samples with twist angles θ=1.05?and θ=1.16?. Reprinted with permission from Ref.[7]. Copyright 2018,Nature Publishing Group.(c)Left:illustration of quasicrystal twisted bilayer graphene.Top right:ARPES results of quasicrystal twisted bilayer graphene.Bottom right:illustration of Umklapp scattering process,which is responsible for the extra scattering points in the ARPES.Reprinted with permission from Ref.[51].Copyright 2018,American Association for the Advancement of Science.

    3.1.2.Magic angle and flat band

    In 2010,Morell et al.predicted the occurrence of flat bands(simultaneously,zero Fermi velocity at Dirac point)in twisted bilayer graphene using tight-binding calculations,which probably means the existence of strong electron–electron interaction.[35]In 2011,Bistritzer et al.solved the continuum Dirac model for twisted bilayer graphene and also found a flat band for a series of the so-called magic angles,[18]which was partly(only for the largest twist angle)convinced in 2015 using STS by Yin et al.[36]Later,Cao et al.successfully realized the material system and made various electrical measurements on it.[6,7]At first,they found that the conductance of twisted bilayer graphene becomes zero with the moiré band half-filled and attributed this to the formation of a Mott insulator,which can be explained in rough as the consequence of the split of the moiré band caused by the repulsion of the two electrons in the same orbital state with different spins(Hubbard model).[37,38]Then they made more careful measurements(four-probe resistance Rxx)and observed an unconventional superconducting state whose doping density is slightly away from the lower Mott-insulator state(Fermi level EF<0)with the critical temperature below 1.7 K.The band structure,the two-probe conductance results,and the four-probe resistance results are shown in Fig.3(c). As they have pointed out,such tunable system offers a brand-new platform to study unconventional superconductivity,which has attracted many researchers to do related work on it(e.g.,a superconducting state is also observed at a twist angle slightly larger than 1.1?under higher pressure).[39–48]

    3.1.3.Graphene quasicrystal

    The twist angles mentioned above are mostly small angles. As for large twist angles,the interaction between two layers is usually weak.[49,50]Ahn et al.fabricated twisted bilayer graphene with a twist angle of exactly 30?,which forms a graphene quasicrystal with dodecagonal quasicrystalline order and anomalous interlayer interaction is found by angleresolved photoemission spectra of the system.[51]Extra scattering points owing to Umklapp scattering process of the two layers are shown in Fig.3(b). Yao et al.have also reported successful growth of such graphene quasicrystal and investigated the emergence of mirrored Dirac cones.[52]They identified that these mirrored Dirac cones are a consequence of the interlayer interaction showing its importance in the incommensurate structure which had been overlooked before.

    3.1.4.Other emerging properties

    Fig.4.Electron–phonon coupling and atomic reconstruction in 2D twisted bilayer materials.(a)and(b)Schematics of interlayer electron–phonon process where a phonon with momentum connects the states k and of different layer(a)and intralayer electron–phonon process where both states k and are from the same layer.(c)and(d)Raman spectra of twisted bilayer graphene with θ=6?and 13?measured with the 2.18 eV and 2.41 eV laser lines,respectively.The vertical coordinate corresponds to the ratio of the peak intensities of the Raman spectra in twisted bilayer graphene and monolayer graphene.(c)The peak around 1620 cm?1 is called La and stems from intralayer electron–phonon scattering process and(d)the peak at 1480 cm?1 is called Te and stems from the interlayer electron–phonon scattering process.(e)and(f)Excitation Raman maps of twisted bilayer graphene with θ=6?(e)and 13?(f)measured under different laser energy excitations.Reprinted with permission from Ref.[54].Copyright 2019,Nature Publishing Group.(g)TEM dark-field images of twisted bilayer graphene with different twist angles obtained by selecting diffraction peak(g=100).Different contrast stands for different stacking order(AB/BA).Reprinted with permission from Ref.[45].Copyright 2019,Nature Publishing Group.

    In addition to the band structure of electrons,electron–phonon coupling is also a fundamental interaction that affects a broad range of phenomena in condensed matter physics,such as electron mobility,and is responsible for conventional superconductivity.[53]In multilayer structures,the interaction can involve intralayer electron–phonon interaction or interlayer electron–phonon interaction(Figs.4(a)and 4(b)).Eliel et al.reported the ability of Raman spectroscopy to probe and distinguish interlayer and intralayer interactions in graphenebased heterostructures.[54]As shown in Figs.4(c)and 4(d),they measured Raman spectra in two samples of twisted bilayer graphene with twist angles θ=6?and 13?recorded with the 2.18 eV and 2.41 eV laser lines,respectively.The frequencies of these phonons depend on the twisting angle θ.[55–63]In addition,they made multiple-excitation Raman measurements using multiple laser lines and found that the results show different dependence on the incident photon energy(Figs.4(e)and 4(f)).Bilayer graphene and graphene/hBN samples with different twist angles also show similar results.

    The theoretical results of twisted bilayer graphene mentioned above are all based on a common assumption that the lattice structure of either layer does not change significantly despite the interlayer interaction.However,Yoo et al.reported that this is not the case.[45]In Fig.4(g),the transmission electron microscope(TEM)dark-field images are obtained by selecting the diffraction peak from a series of twisted bilayer graphene samples with multiple twist angles. In these images,different contrasts stand for totally different stacking order(AB/BA)domains,and for the twisted bilayer graphene sample with 0.1?twist angle,the sharp boundaries indicate the existence of atomic reconstruction,in contrast to the relatively continuous distribution of stacking order if not reconstructed. As the twist angle increases,the boundaries become blurry,which represents the weakening of interlayer interaction.Based on this discovery,they recalculated the band structure of twisted bilayer graphene with small twist angles and found that a simple moiré band description breaks down and the secondary Dirac bands appear when the twist angle θ<θc(θc≈1?).

    3.2.Graphene/hBN heterostructures

    Fig.5.Physical properties of graphene/hBN heterostructures.(a)Left,normalized Hofstadter butterfly spectrum for square lattice in a magnetic field.Middle,density-field diagrams of such system.Colored lines stand for constant chemical potential for both two above.Right,transport measurement results of graphene/hBN heterostructures.The slope of each line has been marked in the figure.Reprinted with permission from Ref.[68].Copyright 2013,Nature Publishing Group.(b)Top left,four-probe resistance as a function of gate voltage(Vg)results.A satellite peak locates away from charge neutrality point and indicates an extra energy gap.Bottom left,energy gap as a function of twist angle.Top middle,satellite peak position as a function of twist angle.Bottom middle,illustration of energy gap.Right,four-probe resistance(R4P),tip deflection(reflection of friction force),and full width at half maximum of the 2D peak(FWHM2D)in Raman spectroscopy as a function of twist angle at a carrier density of ?1.9×1012 cm?2. Reprinted with permission from Ref.[22].Copyright 2018,Nature Publishing Group.

    The study of graphene/hBN heterostructures became popular after Dean et al.pointed out that hBN can be an appealing substrate for graphene,fairly avoiding various factors which will decrease the quality of graphene in contrast to the standard SiO2substrate.[64]The experimental results indicate that the coupling between graphene and hBN is generally weak for the band structure of graphene. In 2013,several papers were published discussing the transport properties of graphene/hBN heterostructures, and they particularly concentrated on the so-called Hofstadter butterfly[65]induced by the moiré periodic potential and an external magnetic field,as shown in Fig.5(a).[66–68]However,despite the crucial role which moiré pattern plays in the realization of the Hofstadter butterfly,the twist angle,an important factor to tune the moiré periodic potential was not introduced then. This can be attributed to the reasons below. Firstly,the realization of the Hofstadter butterfly demands a large periodicity,and thus the twist angle cannot be larger than 2?for graphene/hBN heterostructures.Most importantly,the method to precisely regulate the twist angle after fabrication had not been proposed then.In 2016,AFM tip was introduced and thus the properties of the heterostructures with respect to the twist angle were studied,as shown in Fig.5(b)(the fabrication method has been illustrated in Fig.2(d)).[22]In their experiments,large twist angles exhibit weak coupling between layers accounting for the so-called superlubricity which has also been investigated in other 2D systems,[69–72]while for small twist angles,the interlayer interaction opens a small bandgap at the doping density where locates the satellite peak of the longitudinal resistance.The satellite peak has been reported before as the consequence of the moiré potential,and thus the bandgap significantly depends on the twist angle.In addition,the Raman intensity of the 2D peak,and mechanical properties measured by the AFM tip exhibit similar dependence on the twist angle as well.Despite all this,further investigations are still demanded to explain these experimental results.

    3.3.TMD bilayers

    After the discovery of graphene,the appearance of TMD materials markedly broadens the 2D materials with diverse physical properties.[73–76]Most TMD materials are semiconductors whose bandgaps cover the range from near-infrared to visible region with strong light–matter interaction,the degenerate exciton transitions at the K andvalleys in the momentum space with broken inversion symmetry in TMD materials offer a new platform for exploring spin and valley physics,TMD materials have several phases which can be tuned by electric field,pressure,or light.[77–79]

    3.3.1.Electronic and mechanical coupling in twisted MoS2 bilayer

    Liu et al.investigated photoluminescence and Raman spectra of 44 MoS2bilayers with different twist angles(Figs.6(a)and 6(b)).[80]They reported that the A exciton recombination photoluminescence peak position(peak I in Fig.6(c))remains the same for all bilayers with different twist angles,but photoluminescence intensity decreases significantly compared with the monolayer one.For the bilayer case,a lower-energy peak appears(peak II in Fig.6(c)),which corresponds to an indirect bandgap recombination resulting from the interlayer electronic coupling.They found that the indirect bandgap varies with twist angle.AA/AB stacking bilayers have smaller bandgap than that of twist ones,indicating stronger interlayer electronic coupling. In addition,Raman spectra of MoS2monolayer and bilayers with different twist angles have been investigated to identify the effective interlayer mechanical coupling,that is,larger separation between two Raman peaks(ωA?ωE)means stronger coupling strength(Fig.6(d)).This twist-angle-dependent coupling is attributed to the varied interlayer distance in van der Waals coupled 2D atomic-layered materials due to steric effect:the increase of the interlayer distance will weaken the coupling strength.From their experimental results,AA or AB stacking MoS2bilayer has stronger electronic and mechanical coupling than the twist angles ones. This conclusion is also suitable for other TMD bilayers.[81–83]

    Fig.6.Electronic and mechanical coupling in twisted MoS2 bilayer.(a)Schematics of MoS2 bilayers with different stacking configurations.Green spheres are Mo atoms;yellow sphere are S atoms.(a)Optical images of a MoS2 monolayer and twisted bilayers with different twist angles.(c)Photoluminescence and(d)Raman spectra of MoS2 monolayer and bilayers with different twist angles.Reprinted with permission from Ref.[80].Copyright 2014,Nature Publishing Group.

    3.3.2.Stacking-independent ultrafast charge transfer in twisted TMD heterostructures

    TMD heterostructures are of particular interests because many of them form type II heterojunctions,which facilitate the efficient separation of photoexcited electrons and holes and therefore exhibit great potential in the applications of photodetectors,photovoltaics,and sensors. This separation in MoS2/WS2bilayers could take place within 50 fs upon photoexcitation due to strong interlayer coupling.[84–86]As the interlayer coupling in 2D heterostructure materials varies with interlayer twist angles,Ji et al.have investigated how the interlayer charge transfer in MoS2/WS2bilayers evolves with different stacking configurations(Fig.7(a)).[87]In Fig.7(b),two obvious peaks in MoS2/WS2bilayers photoluminescence spectra correspond to direct A-exciton transitions from MoS2(peak I)and WS2(peak II),respectively. Intensity of Peak I in the heterostructures is 1/5 of that in MoS2monolayer indicating strong interlayer electronic coupling and efficient electron–hole separation.The transient absorption spectra of MoS2and MoS2/WS2bilayers with different twist angles are shown in Fig.7(c).Interestingly,they observed that the rise time of MoS2/WS2bilayers with different twist angles only varies slightly,suggesting that the charge transfer time is robust and stacking independent. This robust ultrafast charge transfer is contrary to time-dependent density functional theory simulations and naive thinking that stronger interlayer coupling induces faster charge transfer.[88]In Fig.7(d),scanning transmission electron microscopy(STEM)image of an AA stacking MoS2/WS2bilayer indicates that in addition to the energy-favourable AA1stacking,there exists high-energy stacking of AA3due to interlayer stretching and shifting.The existence of multiple parallel charge transfer channels results in the robust ultrafast stacking-independent charge transfer,as the measured charge transfer time is mainly determined by the fastest channel(Fig.7(e)).Same results have also be reported by Zhu et al.[89]

    3.3.3.Moiré phonons in twisted MoS2 bilayer

    In TMD bilayers,there exists a moiré periodic potential as well,so electron–phonon coupling and phonon–phonon interactions can be affected. Lin et al.discovered that the moiré periodic potential in twisted MoS2bilayer can modify the properties of phonons in its MoS2monolayer constituent to generate Raman modes related to moiré phonons.[90]They measured the Raman spectra in the region of 50–425 cm?1of the twisted MoS2bilayers with twist angles ranging from 9?to 49?under the excitation energy E=2.54 eV.Apart from those modes observed in all twisted MoS2bilayers independent of θ like longitudinal acoustic(LA)and transverse acoustic(TA)modes,they observed seven series of θ-dependent Raman modes(Figs.8(a)and 8(b)). It can be attributed to that there are seven moiré phonons in the twisted MoS2bilayer. These phonons originate from the phonons in monolayer constituents with the basic vectors of moiré reciprocal lattices folded onto the zone center due to the modulation of the periodic moiré potentials(Figs.8(c)and 8(d)).Due to the weak interlayer coupling in twisted MoS2bilayer,the phonon dispersions of the monolayer constituents can be probed by the θ-dependent frequency of moiré phonons.In addition,all these moiré phonons exhibit a mirror behavior with regard to θ=30?.

    Fig.8.Moiré phonons in twisted MoS2 bilayer.(a)and(b)Raman spectra of twisted MoS2 bilayer in the regions of(a)50–365 cm?1 and(b)370–425 cm?1. The Raman modes in different phonon branches are represented by different shapes and color symbols.The Raman spectra of monolayer MoS2 and 3R-bilayer MoS2(θ=0?)are plotted for comparison.(c)and(d)The comparison of calculated and experimental frequencies of moiré phonons dependent on θ(c)and|g|(d),|g|is the magnitude of the basic vector of the moiré reciprocal lattices.Reprinted with permission from Ref.[90].Copyright 2018,American Chemical Society.

    3.3.4.Moiré excitons in twisted TMD heterostructures

    Exciton is the particle-like entity that formed by an electron bound to a hole.[91]Moiré excitons are excitons whose energy levels are quantized arising from the lateral confinement imposed by the deep moiré potential.[8,11]Jin et al.reported experimental observation of moiré excitons in WSe2/WS2bilayers.[8]The optical photograph and schematic diagram are shown in Figs.9(a)and 9(b),and the WSe2/WS2bilayers are encapsulated in thin hBN layers for protection.The twist angle is identified by the STEM image in Fig.9(c),which shows a uniform triangular lattice pattern with a well-defined periodicity of about 8 nm.In the WSe2/WS2bilayers with near-zero twist angle,WSe2A exciton state splits to three prominent peaks(labelled as I,II,and III,respectively)corresponding to distinct moiré exciton states,while only a single resonance peak appears in large twist angle heterostructures(Fig.9(d)).They found that the gate-dependent behaviors of these moiré exciton states are distinct from that of the A exciton in WSe2monolayers and WSe2/WS2bilayers with large twist angles(Fig.9(e)).These phenomena can be fully described by a theoretical model in which the moiré periodic potential(250 meV)is much stronger than the exciton kinetic energy(8 meV)and generates multiple flat exciton minibands.Other three groups also reported the observation of moiré excitons in TMD heterostructures at the same time.[9–11]These observations provide a promising platform for exploring several theoretical proposals related to quantum photonics,such as topological excitons,giant spin–orbit coupling,and entangled photon sources.

    Fig.9.Moiré excitons in twisted TMD heterostructures.(a)and(b)Optical microscopy image(a)and side-view illustration(b)of a representative heterostructure with a near-zero twist angle.(c)A zoomed-in image of atomicresolution STEM of near-zero twist angle WSe2/WS2 bilayers showing the moiré superlattice.The two superlattice vectors are labelled.(d)Reflection contrast spectrum of near-zero twist angle WSe2/WS2 bilayers(top)compared to a large twist angle one(bottom).(e)Reflection contrast spectra in the range between 1.6 eV and 1.8 eV of the WSe2.A exciton upon electron doping.The electron concentration is noted for each spectrum in units of cm?2.Reprinted with permission from Ref.[8].Copyright 2019,Nature Publishing Group.

    4.Conclusion and perspectives

    As introduced above,engineering physical properties of 2D bilayers by interfacial twist angle has become a hot topic in recent years.This is mainly achieved by two mechanisms,tuning interlayer coupling and moiré periodic potential by tuning the twist angle. Although various novel physics have been found in the 2D heterostructure family,many of them such as the unconventional superconductivity and stackingindependent ultrafast interfacial charge transfer still demand deeper understanding.Also,developing a universal approach to continuously tuning the twist angle and thereby modulating their physical properties is required.At last,massive production of clean interface with accurate twist angle and large-area single crystal is the main challenge for the real applications based on 2D heterostructure family,which should be on the schedule to be explored.

    猜你喜歡
    程陽
    圖片新聞
    企業(yè)界(2024年3期)2024-04-02 12:05:36
    青枝搖曳
    飛天(2023年12期)2024-01-03 22:57:06
    慢慢來吧,慢慢相愛
    青年文摘(2021年2期)2021-12-18 17:42:29
    婆婆做的菜,我怎么好意思挑
    程陽,你還好嗎
    本科生和研究生協(xié)同互補的光電科創(chuàng)培養(yǎng)模式探索
    程陽,你還好嗎
    程陽,你還好嗎
    飛來飛去的小鳥
    夢別金陵處
    飛魔幻A(2015年4期)2015-05-14 09:46:34
    啦啦啦在线观看免费高清www| 久久人人爽人人爽人人片va| 天堂中文最新版在线下载| 久久av网站| 久久这里有精品视频免费| 香蕉精品网在线| 国产视频内射| 一区二区三区乱码不卡18| 大片免费播放器 马上看| 亚洲精品久久午夜乱码| 国产精品一区二区在线不卡| 久久人人爽人人爽人人片va| 99热网站在线观看| 国产精品偷伦视频观看了| 国产免费福利视频在线观看| 亚洲av二区三区四区| 80岁老熟妇乱子伦牲交| 夜夜爽夜夜爽视频| 成年av动漫网址| 精品99又大又爽又粗少妇毛片| 久久久久久久大尺度免费视频| 丝袜脚勾引网站| 欧美xxxx性猛交bbbb| 日本欧美国产在线视频| 午夜福利影视在线免费观看| 精品久久久精品久久久| 欧美xxxx黑人xx丫x性爽| 亚洲aⅴ乱码一区二区在线播放| 校园人妻丝袜中文字幕| 美女xxoo啪啪120秒动态图| 亚洲精品国产色婷婷电影| 国产高清国产精品国产三级 | 久久精品国产a三级三级三级| 蜜桃亚洲精品一区二区三区| 狠狠精品人妻久久久久久综合| 国产v大片淫在线免费观看| 亚洲欧美日韩另类电影网站 | 老女人水多毛片| 亚洲图色成人| 亚洲美女搞黄在线观看| 亚洲美女搞黄在线观看| 国产在线一区二区三区精| 99久久人妻综合| 亚洲美女搞黄在线观看| 涩涩av久久男人的天堂| 老师上课跳d突然被开到最大视频| 久久精品国产鲁丝片午夜精品| 国产免费又黄又爽又色| 国产色爽女视频免费观看| 美女中出高潮动态图| 久久毛片免费看一区二区三区| 色5月婷婷丁香| 内射极品少妇av片p| 色5月婷婷丁香| 女性生殖器流出的白浆| 人体艺术视频欧美日本| 制服丝袜香蕉在线| 三级国产精品欧美在线观看| 亚洲欧美精品自产自拍| 日韩欧美 国产精品| 日韩av不卡免费在线播放| 男女啪啪激烈高潮av片| 欧美xxⅹ黑人| 三级国产精品欧美在线观看| 成人毛片a级毛片在线播放| 久久人妻熟女aⅴ| 国产精品一区二区性色av| av在线蜜桃| 亚洲精品亚洲一区二区| 街头女战士在线观看网站| 国产精品偷伦视频观看了| 亚洲av中文av极速乱| 自拍偷自拍亚洲精品老妇| 国产黄频视频在线观看| 自拍偷自拍亚洲精品老妇| 久久精品人妻少妇| 男女边摸边吃奶| 婷婷色麻豆天堂久久| 亚洲精品视频女| 22中文网久久字幕| 久久久午夜欧美精品| 欧美精品一区二区大全| 国产免费一级a男人的天堂| 永久免费av网站大全| 亚洲熟女精品中文字幕| 国产精品无大码| 亚洲欧美日韩无卡精品| 亚洲欧美精品专区久久| 免费观看a级毛片全部| 精品人妻视频免费看| 日本vs欧美在线观看视频 | 久久人人爽人人爽人人片va| 欧美亚洲 丝袜 人妻 在线| 国产精品偷伦视频观看了| 亚洲美女黄色视频免费看| 男女下面进入的视频免费午夜| 日韩精品有码人妻一区| 高清日韩中文字幕在线| 日韩三级伦理在线观看| 色哟哟·www| 狂野欧美激情性xxxx在线观看| 黑人猛操日本美女一级片| 欧美日韩视频高清一区二区三区二| 久久精品久久精品一区二区三区| 欧美成人一区二区免费高清观看| 性色avwww在线观看| 热99国产精品久久久久久7| av不卡在线播放| 乱系列少妇在线播放| 亚洲精品成人av观看孕妇| 国产v大片淫在线免费观看| 国产精品蜜桃在线观看| 色视频www国产| 极品教师在线视频| 99久国产av精品国产电影| 91精品伊人久久大香线蕉| 丰满人妻一区二区三区视频av| 色婷婷av一区二区三区视频| 日韩制服骚丝袜av| 一本—道久久a久久精品蜜桃钙片| 18禁裸乳无遮挡动漫免费视频| 自拍欧美九色日韩亚洲蝌蚪91 | 日韩精品有码人妻一区| 久久久久久久久大av| 国产精品一及| 精品午夜福利在线看| 一级a做视频免费观看| 亚洲内射少妇av| 777米奇影视久久| 多毛熟女@视频| 91久久精品国产一区二区三区| 欧美国产精品一级二级三级 | 各种免费的搞黄视频| 久久久成人免费电影| 久久久久久伊人网av| 国产精品免费大片| 欧美日韩视频高清一区二区三区二| 大片免费播放器 马上看| 下体分泌物呈黄色| 天堂俺去俺来也www色官网| 亚洲图色成人| 亚洲国产毛片av蜜桃av| 黄色欧美视频在线观看| 夜夜爽夜夜爽视频| 国产成人午夜福利电影在线观看| 亚洲国产日韩一区二区| 国产av精品麻豆| 91午夜精品亚洲一区二区三区| 美女主播在线视频| 看非洲黑人一级黄片| 日日撸夜夜添| 激情 狠狠 欧美| 毛片一级片免费看久久久久| 高清欧美精品videossex| 日韩一区二区三区影片| 老熟女久久久| 人妻 亚洲 视频| 国产成人精品福利久久| 亚洲欧美精品自产自拍| 91aial.com中文字幕在线观看| 亚洲综合色惰| 国产视频首页在线观看| 毛片一级片免费看久久久久| 97精品久久久久久久久久精品| 内地一区二区视频在线| 日韩电影二区| 成人免费观看视频高清| 1000部很黄的大片| 深夜a级毛片| 国产欧美另类精品又又久久亚洲欧美| 国产视频首页在线观看| 久久6这里有精品| 久久久色成人| 国产精品伦人一区二区| 99热这里只有是精品50| 免费看光身美女| 亚洲av欧美aⅴ国产| 精品国产乱码久久久久久小说| 啦啦啦在线观看免费高清www| 免费观看无遮挡的男女| 日韩亚洲欧美综合| 91精品国产九色| 精品视频人人做人人爽| 国产在线免费精品| 日韩av在线免费看完整版不卡| 国产精品av视频在线免费观看| 有码 亚洲区| 性色avwww在线观看| 99久久人妻综合| 久久久久久久亚洲中文字幕| 国产av一区二区精品久久 | 欧美日韩在线观看h| xxx大片免费视频| 亚洲婷婷狠狠爱综合网| 国产美女午夜福利| av黄色大香蕉| 国产男女超爽视频在线观看| 一区二区三区精品91| 精品久久国产蜜桃| 国产精品嫩草影院av在线观看| 直男gayav资源| 亚洲中文av在线| 国产精品无大码| 日韩强制内射视频| 乱系列少妇在线播放| 一级爰片在线观看| 人人妻人人澡人人爽人人夜夜| 久久精品国产自在天天线| 欧美一区二区亚洲| 国产精品国产三级国产专区5o| av专区在线播放| 男人舔奶头视频| 亚洲av电影在线观看一区二区三区| 高清毛片免费看| 国产乱人视频| 国模一区二区三区四区视频| 看免费成人av毛片| 激情 狠狠 欧美| 国产日韩欧美亚洲二区| 五月伊人婷婷丁香| 精品一区二区三区视频在线| 性高湖久久久久久久久免费观看| 男女边吃奶边做爰视频| 在线观看人妻少妇| 国产真实伦视频高清在线观看| 美女cb高潮喷水在线观看| 人人妻人人爽人人添夜夜欢视频 | 欧美少妇被猛烈插入视频| 久久久久久久久久久丰满| 国内少妇人妻偷人精品xxx网站| 国产免费视频播放在线视频| 欧美高清成人免费视频www| 99热网站在线观看| 国产91av在线免费观看| 国产乱人视频| 亚洲国产最新在线播放| 久久精品国产亚洲av涩爱| 一本—道久久a久久精品蜜桃钙片| 妹子高潮喷水视频| 亚洲av中文av极速乱| 亚洲国产最新在线播放| 女人久久www免费人成看片| 男女国产视频网站| 日本欧美视频一区| 国产成人免费观看mmmm| 免费看av在线观看网站| 午夜福利在线在线| 熟女人妻精品中文字幕| 国产精品一区二区性色av| 国产免费视频播放在线视频| 久久久久久久久久成人| 亚洲国产欧美人成| 国产日韩欧美在线精品| 免费播放大片免费观看视频在线观看| 妹子高潮喷水视频| 22中文网久久字幕| 男人爽女人下面视频在线观看| 国产黄片美女视频| 国精品久久久久久国模美| 国产av一区二区精品久久 | 在线亚洲精品国产二区图片欧美 | 我的老师免费观看完整版| 久久韩国三级中文字幕| 成人高潮视频无遮挡免费网站| 五月玫瑰六月丁香| av在线老鸭窝| 久久久久久伊人网av| 蜜桃亚洲精品一区二区三区| 精品人妻偷拍中文字幕| 久久久色成人| 久久久久久久久久人人人人人人| 91精品国产国语对白视频| 午夜免费男女啪啪视频观看| 日本猛色少妇xxxxx猛交久久| 伊人久久国产一区二区| 亚洲美女视频黄频| 久久久久久久国产电影| 日韩中字成人| 亚洲精品456在线播放app| 久久久亚洲精品成人影院| 最近手机中文字幕大全| 最近中文字幕2019免费版| 久久青草综合色| 欧美高清成人免费视频www| 自拍欧美九色日韩亚洲蝌蚪91 | 欧美区成人在线视频| 啦啦啦中文免费视频观看日本| 小蜜桃在线观看免费完整版高清| 午夜激情久久久久久久| 久久国产精品男人的天堂亚洲 | 午夜免费观看性视频| 最近最新中文字幕免费大全7| 欧美成人精品欧美一级黄| 男人舔奶头视频| 在线 av 中文字幕| 永久网站在线| 久久国内精品自在自线图片| 成人亚洲欧美一区二区av| 久久6这里有精品| 国产成人一区二区在线| 欧美国产精品一级二级三级 | 日韩欧美 国产精品| 亚洲综合精品二区| 亚洲经典国产精华液单| 卡戴珊不雅视频在线播放| 在线精品无人区一区二区三 | 久久久久久久久久久免费av| 亚洲aⅴ乱码一区二区在线播放| 亚洲,欧美,日韩| 国产视频首页在线观看| 日韩在线高清观看一区二区三区| 久久ye,这里只有精品| 青春草视频在线免费观看| av免费在线看不卡| 亚洲av在线观看美女高潮| av国产免费在线观看| 久久99热6这里只有精品| 久久热精品热| 久久久久国产精品人妻一区二区| 中文字幕av成人在线电影| 日韩亚洲欧美综合| 永久免费av网站大全| 亚洲欧美清纯卡通| 天堂中文最新版在线下载| 最后的刺客免费高清国语| 网址你懂的国产日韩在线| 啦啦啦中文免费视频观看日本| 尾随美女入室| 国产综合精华液| 欧美日本视频| 亚洲av电影在线观看一区二区三区| 欧美变态另类bdsm刘玥| 噜噜噜噜噜久久久久久91| 中文字幕久久专区| 2018国产大陆天天弄谢| 日韩欧美一区视频在线观看 | 97在线视频观看| 免费少妇av软件| 精品久久久久久久久亚洲| 插阴视频在线观看视频| 成人亚洲欧美一区二区av| 亚洲成人手机| 九九在线视频观看精品| 日韩免费高清中文字幕av| 久久久久国产网址| 天堂8中文在线网| 亚洲精品一二三| 伦理电影免费视频| 国产又色又爽无遮挡免| 国产精品一区二区在线不卡| 中国美白少妇内射xxxbb| 亚洲精品国产成人久久av| 国产av一区二区精品久久 | 观看免费一级毛片| 爱豆传媒免费全集在线观看| 精品一区二区三卡| 97在线视频观看| 久久久精品免费免费高清| 精品久久国产蜜桃| 日韩一区二区三区影片| 男的添女的下面高潮视频| 精品一区二区三区视频在线| 久久久亚洲精品成人影院| 国产美女午夜福利| 国产亚洲5aaaaa淫片| 免费在线观看成人毛片| 国产一区二区三区av在线| 性色av一级| 街头女战士在线观看网站| 久久精品久久久久久久性| 日产精品乱码卡一卡2卡三| 99热6这里只有精品| 亚洲av中文av极速乱| 国产中年淑女户外野战色| 国产乱人视频| 成年免费大片在线观看| 免费观看a级毛片全部| 香蕉精品网在线| 3wmmmm亚洲av在线观看| 亚洲精品一区蜜桃| 亚洲自偷自拍三级| 成人午夜精彩视频在线观看| 美女xxoo啪啪120秒动态图| 欧美+日韩+精品| 日本av手机在线免费观看| 日本黄色日本黄色录像| 毛片一级片免费看久久久久| 插逼视频在线观看| av女优亚洲男人天堂| 1000部很黄的大片| 久久人人爽人人片av| 汤姆久久久久久久影院中文字幕| 在线免费观看不下载黄p国产| 22中文网久久字幕| 国产亚洲一区二区精品| 精品久久久久久久久亚洲| 99热这里只有精品一区| 七月丁香在线播放| 国产淫语在线视频| 狂野欧美激情性xxxx在线观看| 中文资源天堂在线| 免费观看无遮挡的男女| 九九在线视频观看精品| av女优亚洲男人天堂| 亚洲精品亚洲一区二区| 男人狂女人下面高潮的视频| 国内揄拍国产精品人妻在线| 老女人水多毛片| 欧美精品国产亚洲| 国产午夜精品一二区理论片| 观看美女的网站| 少妇高潮的动态图| 春色校园在线视频观看| 国产免费福利视频在线观看| 黄色视频在线播放观看不卡| freevideosex欧美| 成人二区视频| 看非洲黑人一级黄片| 99热这里只有精品一区| 亚洲av.av天堂| 国产 一区 欧美 日韩| 国产精品国产三级国产av玫瑰| 精品亚洲成国产av| 国产亚洲欧美精品永久| 亚洲av中文字字幕乱码综合| 成人影院久久| 不卡视频在线观看欧美| 久久韩国三级中文字幕| 大陆偷拍与自拍| 亚洲va在线va天堂va国产| 九九在线视频观看精品| 精品一区二区三区视频在线| 亚洲av中文av极速乱| 国产精品国产三级国产专区5o| 亚洲欧美日韩无卡精品| 熟妇人妻不卡中文字幕| 七月丁香在线播放| 男人添女人高潮全过程视频| 国产精品爽爽va在线观看网站| 国产精品人妻久久久久久| 亚洲av电影在线观看一区二区三区| 人人妻人人爽人人添夜夜欢视频 | 黄色怎么调成土黄色| 免费大片黄手机在线观看| 在线观看免费高清a一片| 亚洲av二区三区四区| 一区二区三区乱码不卡18| 国产精品欧美亚洲77777| 精品久久久噜噜| 色哟哟·www| 国产精品不卡视频一区二区| 亚洲色图综合在线观看| 性高湖久久久久久久久免费观看| 插阴视频在线观看视频| 高清黄色对白视频在线免费看 | 精品亚洲成a人片在线观看 | 免费看不卡的av| 久久综合国产亚洲精品| 国产白丝娇喘喷水9色精品| 最后的刺客免费高清国语| 亚洲欧美一区二区三区黑人 | 在线免费十八禁| 亚洲精品视频女| 妹子高潮喷水视频| 国产精品av视频在线免费观看| 国产大屁股一区二区在线视频| 国产亚洲91精品色在线| 久久精品国产a三级三级三级| 精华霜和精华液先用哪个| 深爱激情五月婷婷| 水蜜桃什么品种好| 亚洲成人av在线免费| 人人妻人人澡人人爽人人夜夜| 搡老乐熟女国产| 成人美女网站在线观看视频| 亚洲国产av新网站| 久久久久久久久久久丰满| 一区二区三区精品91| 亚洲欧美清纯卡通| 少妇高潮的动态图| 国产精品精品国产色婷婷| 中文字幕久久专区| 一级毛片 在线播放| 狠狠精品人妻久久久久久综合| 在线观看免费日韩欧美大片 | 亚洲无线观看免费| 久久久久人妻精品一区果冻| 国产午夜精品一二区理论片| 国国产精品蜜臀av免费| 男人添女人高潮全过程视频| 亚洲自偷自拍三级| 一级爰片在线观看| 各种免费的搞黄视频| 久久久a久久爽久久v久久| 国产成人免费观看mmmm| 高清在线视频一区二区三区| 99热网站在线观看| 中文在线观看免费www的网站| 亚洲av男天堂| 涩涩av久久男人的天堂| 日韩三级伦理在线观看| 秋霞伦理黄片| 国产精品一区二区在线不卡| 91狼人影院| 国产综合精华液| 在线精品无人区一区二区三 | 国产精品人妻久久久久久| 欧美国产精品一级二级三级 | 蜜桃在线观看..| 亚洲精品国产成人久久av| 免费看不卡的av| 青春草亚洲视频在线观看| 国产伦理片在线播放av一区| 高清毛片免费看| 看非洲黑人一级黄片| 欧美极品一区二区三区四区| 在线观看一区二区三区| 中文字幕制服av| 男女下面进入的视频免费午夜| 欧美高清性xxxxhd video| 一区二区av电影网| 久久久久久久久久久丰满| 久久久久久伊人网av| 亚洲人成网站高清观看| 国产精品人妻久久久影院| 成人综合一区亚洲| 91久久精品国产一区二区成人| 岛国毛片在线播放| 大片免费播放器 马上看| 免费观看在线日韩| 国产精品久久久久久精品古装| 亚州av有码| 亚洲性久久影院| 我要看黄色一级片免费的| 亚洲欧美精品专区久久| 又黄又爽又刺激的免费视频.| 超碰av人人做人人爽久久| 你懂的网址亚洲精品在线观看| 韩国高清视频一区二区三区| 免费不卡的大黄色大毛片视频在线观看| 色5月婷婷丁香| 99久久精品国产国产毛片| 日本av免费视频播放| 国产成人精品一,二区| 色视频在线一区二区三区| 亚洲欧美一区二区三区黑人 | h日本视频在线播放| 51国产日韩欧美| 99久久精品热视频| 日韩成人伦理影院| 国产精品久久久久成人av| 成人黄色视频免费在线看| 精品久久久噜噜| 亚洲,一卡二卡三卡| 91久久精品电影网| 亚洲精品乱码久久久v下载方式| 激情五月婷婷亚洲| 九九在线视频观看精品| 妹子高潮喷水视频| 久久人人爽人人爽人人片va| 亚洲色图av天堂| 亚洲欧美日韩另类电影网站 | 免费黄网站久久成人精品| 丰满乱子伦码专区| 人体艺术视频欧美日本| 国产精品久久久久久精品古装| 国产成人精品婷婷| 成人亚洲精品一区在线观看 | 纵有疾风起免费观看全集完整版| 成年av动漫网址| 狂野欧美激情性xxxx在线观看| 熟女电影av网| 婷婷色av中文字幕| 少妇的逼好多水| 成人特级av手机在线观看| 国产av精品麻豆| 婷婷色av中文字幕| 有码 亚洲区| 亚洲成人av在线免费| 欧美3d第一页| 国产男女内射视频| 夫妻性生交免费视频一级片| 99热这里只有是精品在线观看| 大码成人一级视频| 亚洲色图av天堂| 麻豆精品久久久久久蜜桃| 亚洲精品色激情综合| 色综合色国产| 国产精品国产三级国产专区5o| 国产欧美另类精品又又久久亚洲欧美| 黄色配什么色好看| 韩国av在线不卡| 亚洲国产欧美在线一区| 网址你懂的国产日韩在线| 建设人人有责人人尽责人人享有的 | 黄色配什么色好看| 国产中年淑女户外野战色| 免费不卡的大黄色大毛片视频在线观看| 亚洲国产日韩一区二区| 亚洲精品第二区| 亚洲自偷自拍三级| 看十八女毛片水多多多| 99热这里只有是精品在线观看| 中文精品一卡2卡3卡4更新| 免费大片黄手机在线观看| 韩国av在线不卡| 午夜激情久久久久久久| 久久国产精品大桥未久av | 九草在线视频观看| 韩国av在线不卡| 国产成人精品婷婷| 成人亚洲欧美一区二区av| 国产v大片淫在线免费观看| 伦理电影免费视频| 男女免费视频国产|