Interaction of surface acoustic waves with electronic excitations in graphene

被引:39
作者
Hernandez-Minguez, A. [1 ]
Liou, Y-T [1 ]
Santos, P., V [1 ]
机构
[1] Leibniz Inst Forsch Verbund Berlin eV, Paul Drude Inst Festkorperelekt, Hausvogteipl 5-7, D-10117 Berlin, Germany
基金
欧盟地平线“2020”;
关键词
graphene; surface acoustic waves; acousto-electric interaction; TRANSPORT-PROPERTIES; BALLISTIC TRANSPORT; HIGH-QUALITY; AMPLIFICATION; FILMS; ATTENUATION; MODULATION; COHERENCE; PLASMONS; MOBILITY;
D O I
10.1088/1361-6463/aad593
中图分类号
O59 [应用物理学];
学科分类号
摘要
This article reviews the main theoretical and experimental advances regarding the interaction between surface acoustic waves (SAWs) and electronic excitations in graphene. The coupling of the graphene electron gas to the SAW piezoelectric field can modify the propagation properties of the SAW, and even amplify the intensity of SAWs traveling along the graphene layer. Conversely, the periodic electric and strain fields of the SAW can be used to modify the graphene Dirac cone and to couple light into graphene plasmons. Finally, SAWs can generate acousto-electric currents in graphene. These increase linearly with the SAW frequency and power but, in contrast to conventional currents, they depend non-monotonously on the graphene electric conductivity. Most of these functionalities have been reported in graphene transferred to the surface of strong piezoelectric insulators. The recent observation of acousto-electric currents in epitaxial graphene on SiC opens the way to the large-scale fabrication of graphene-based acousto-electric devices patterned directly on a semi-insulating wafer.
引用
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页数:17
相关论文
共 122 条
[21]   Surface Acoustic Wave Response to Optical Absorption by Graphene Composite Film [J].
Chivukula, Venkata S. ;
Ciplys, Daumantas ;
Kim, Jin Ho ;
Rimeika, Romualdas ;
Xu, Jimmy M. ;
Shur, Michael S. .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2012, 59 (02) :265-270
[22]   Surface Acoustic Waves in Graphene Structures: Response to Ambient Humidity [J].
Ciplys, D. ;
Rimeika, R. ;
Chivukula, V. ;
Shur, M. S. ;
Kim, J. H. ;
Xu, J. M. .
2010 IEEE SENSORS, 2010, :785-788
[23]   AMPLIFICATION OF ACOUSTIC SURFACE WAVES WITH ADJACENT SEMICONDUCTOR AND PIEZOELECTRIC CRYSTALS [J].
COLLINS, JH ;
LAKIN, KM ;
QUATE, CF ;
SHAW, HJ .
APPLIED PHYSICS LETTERS, 1968, 13 (09) :314-+
[24]   Photon anti-bunching in acoustically pumped quantum dots [J].
Couto, O. D. D., Jr. ;
Lazic, S. ;
Iikawa, F. ;
Stotz, J. A. H. ;
Jahn, U. ;
Hey, R. ;
Santos, P. V. .
NATURE PHOTONICS, 2009, 3 (11) :645-648
[25]   Magnetization dynamics triggered by surface acoustic waves [J].
Davis, S. ;
Baruth, A. ;
Adenwalla, S. .
APPLIED PHYSICS LETTERS, 2010, 97 (23)
[26]   Modulation of photonic structures by surface acoustic waves [J].
de Lima, MM ;
Santos, PV .
REPORTS ON PROGRESS IN PHYSICS, 2005, 68 (07) :1639-1701
[27]   The experimental and theoretical characterization of the SAW propagation properties for zinc oxide films on silicon carbide [J].
Didenko, IS ;
Hickernell, FS ;
Naumenko, NF .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2000, 47 (01) :179-187
[28]   Transport in graphene superimposed by a moving electrical superlattice potential [J].
Dietel, Juergen ;
Kleinert, Hagen .
PHYSICAL REVIEW B, 2012, 86 (11)
[29]   Magnetotransport and thermoelectricity in Landau-quantized disordered graphene [J].
Dora, Balazs ;
Thalmeier, Peter .
PHYSICAL REVIEW B, 2007, 76 (03)
[30]   ACOUSTOELECTRIC STUDY OF LOCALIZED STATES IN THE QUANTIZED HALL-EFFECT [J].
ESSLINGER, A ;
WIXFORTH, A ;
WINKLER, RW ;
KOTTHAUS, JP ;
NICKEL, H ;
SCHLAPP, W ;
LOSCH, R .
SOLID STATE COMMUNICATIONS, 1992, 84 (10) :939-942