红外与毫米波学报, 2016, 35 (1): 1, 网络出版: 2016-03-22  

等离子体材料银铟合金光学性质的组分依赖性

Composition-dependent optical properties of plasmonic AgxIn1-x alloys
作者单位
复旦大学 光科学与工程系,上海超精密光学制造工程技术研究中心,上海 200433
引用该论文

杨尚东, 郑玉祥, 张冬旭, 张金波, 胡二涛, 张荣君, 王松有, 陈良尧. 等离子体材料银铟合金光学性质的组分依赖性[J]. 红外与毫米波学报, 2016, 35(1): 1.

YANG Shang-Dong, ZHENG Yu-Xiang*, ZHANG Dong-Xu, ZHANG Jin-Bo, HU Er-Tao, ZHANG Rong-Jun, WANG Song-You, CHEN Liang-Yao. Composition-dependent optical properties of plasmonic AgxIn1-x alloys[J]. Journal of Infrared and Millimeter Waves, 2016, 35(1): 1.

参考文献

[1] Alu A, Engheta N. Plasmonic and metamaterial cloaking: physical mechanisms and potentials[J]. Journal of Optics A: Pure and Applied Optics, 2008,10: 093002.

[2] Zentgraf T, LIU Yong-Min, Mikkelsen M H, et al. Plasmonic Luneburg and Eaton lenses[J]. Nature Nanotechnology, 2011, 6: 151-155.

[3] FU Yong-Qi, ZHOU Xiu-Li. Plasmonic Lenses: A Review[J]. Plasmonics, 2010, 5: 287-310.

[4] Pendry J B. Negative Refraction Makes a Perfect Lens[J]. Physical Review Letters, 2000, 85: 3966-3969.

[5] Blaber M G, Arnold M D, Ford M J. Designing materials for plasmonic systems: the alkali-noble intermetallics[J]. Journal of Physics: Condensed Matter, 2010, 22: 095501.

[6] Boltasseva A, Atwater H A. Low-Loss Plasmonic Metamaterials[J]. Science, 2011, 331: 290.

[7] Noginov M A, Zhu G, Bahoura M, et al. The effect of gain and absorption on surface plasmons in metal nanoparticles[J]. Applied Physics B: Lasers and Optics, 2007, 86: 455-460.

[8] Noginov M A, Podolskiy V A, Zhu G, et al. Compensation of loss in propagating surface plasmon polariton by gain in adjacent dielectric medium[J]. Optics Express, 2008, 16: 1385-1392.

[9] Khurgin J B, Sun G. In search of the elusive lossless metal[J]. Applied Physics Letters, 2010, 96: 181102.

[10] Thylén L, Holmstrm P, Bratkovsky A, et al. Limits on Integration as Determined by Power Dissipation and Signal-to-Noise Ratio in Loss-Compensated Photonic Integrated Circuits Based on Metal/Quantum-Dot Materials[J]. IEEE Journal of Quantum Electronics, 2010, 46(4): 518-524.

[11] West P R, Ishii S, Naik G V, et al. Searching for better plasmonic materials[J]. Laser Photonics Review, 2010, 4: 795.

[12] Rivory J. Comparative study of the electronic structure of noble-metal-noble-metal alloys by optical spectroscopic[J]. Physical Review B, 1977, 15(6): 3119-3135.

[13] SONG Jin-Tao, LI He-Yin, LI Jing, et al. Fabrication and optical properties of metastable Cu-Ag alloys[J]. Applied Optics, 2002, 41: 5413.

[14] Morgan R M, Lynch D W. Optical Properties of Dilute Ag-In Alloys[J]. Physical Review, 1968, 172(3): 628-640.

[15] Wronkowska A A, Wronkowski A, Bukaluk A, et al. Structural analysis of In/Ag, In/Cu and In/Pd thin films on tungsten by ellipsometric, XRD and AES methods[J]. Applied Surface Science, 2008, 254: 4401-4407.

[16] May R A, Kondrachova L, Hahn B P, et al. Optical Constants of Electrodeposited Mixed Molybdenum-Tungsten Oxide Films Determined by Variable-Angle Spectroscopic Ellipsometry[J]. The Journal of Chemical Physics C, 2007, 111: 18251-18257.

[17] Tompkins H G, Mcgahan W A. Spectroscopic Ellipsometry and Reflectometry: A User’s Guide[M], New York: Wiley Inter-Science,1999.

[18] CHEN Liang-Yao, FENG Xing-Wei, SU Yi, et al. Design of a scanning ellipsometer by synchronous rotation of the polarizer and analyzer[J]. Applied Optics, 1994, 33(7): 1299-1305.

[19] Barron L W, Neidrich J, Kurinec S K. Optical, electrical and structural properties of sputtered aluminum alloy thin films with copper, titanium and chromium additions[J]. Thin Solid Films, 2007, 515: 3363.

[20] Woltgens H, Friedrich I, Njorog W K, et al. Optical electrical and structural properties of Al-Ti and Al-Cr thin films[J]. Thin Solid Films, 2001, 388: 237-244.

[21] Mookerji B, Stratman M, Wall M, et al. The optical constants of gallium stabilized δ-plutonium metal between 0.7 and 4.3 eV measured by spectroscopic ellipsometry using a double-windowed experimental chamber[J]. Journal of Alloys and Compounds, 2007, 444: 339-341.

[22] Pells G P, Montgomery H. The optical properties of α-phase Cu-Zn, Cu-Ga, Cu-Ge and Cu-As alloys[J]. Metal Physics Supplement, 1970, 3: s330.

[23] Palik E D. Handbook of Optical Constants of Solids[M]. Orlando: Academic Press, 1985.

[24] Wooten F. Optical Properties of Solids[M]. New York: Academic Press, 1972.

[25] Allen J W, Lucovsky G, Mikkelsen J C. Optical properties and electronic structure of crossroads material MnTe[J]. Solid State Communications, 1977, 24(5): 367-370.

[26] Smith J B, Ehrenreich H. Frequency dependence of the optical relaxation time in metals[J]. Physical Review B, 1982, 25(2): 923.

[27] Thompson B V. Neutron Scattering by an Anharmonic Crystal[J]. Physical Review, 1963, 131(4): 1420.

[28] Kim K J, Chen L Y, Lynch D W. Ellipsometric study of optical transitions in Ag1-xInx alloys[J]. Physical Review B, 1988, 38(18): 13107.

[29] O’Learya S K. An analytical density of states and joint density of states analysis of amorphous semiconductors[J]. Journal of Applied Physics, 2004, 96(7): 3680.

[30] Liang W Y, Beal A R. A study of the optical joint density-of-states function[J]. Solid State Physics, 1976, 9: 2824-2833.0015

杨尚东, 郑玉祥, 张冬旭, 张金波, 胡二涛, 张荣君, 王松有, 陈良尧. 等离子体材料银铟合金光学性质的组分依赖性[J]. 红外与毫米波学报, 2016, 35(1): 1. YANG Shang-Dong, ZHENG Yu-Xiang*, ZHANG Dong-Xu, ZHANG Jin-Bo, HU Er-Tao, ZHANG Rong-Jun, WANG Song-You, CHEN Liang-Yao. Composition-dependent optical properties of plasmonic AgxIn1-x alloys[J]. Journal of Infrared and Millimeter Waves, 2016, 35(1): 1.

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