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147 results
2017
Shi, B., S. Zhu, Q. Li, Y. Wan, E. Hu, and K. Lau. 2017. “1.55 Mm Room-Temperature Lasing from Subwavelength Quantum-Dot Microdisks Directly Grown on (001) Si”. Applied Physics Letters 110 (12).
Shi, B., S. Zhu, Q. Li, Y. Wan, E. Hu, and K. Lau. 2017. “1.55 Mm Room-Temperature Lasing from Subwavelength Quantum-Dot Microdisks Directly Grown on (001) Si”. Applied Physics Letters 110 (12).
2016
Zhang, X., and E. L. Hu. 2016. “Templated Growth of Diamond Optical Resonators via Plasma-Enhanced Chemical Vapor Deposition”. Applied Physics Letters 109 (8). doi:http://dx.doi.org/10.1063/1.4961536.
Zhang, X., and E. L. Hu. 2016. “Templated Growth of Diamond Optical Resonators via Plasma-Enhanced Chemical Vapor Deposition”. Applied Physics Letters 109 (8). doi:http://dx.doi.org/10.1063/1.4961536.
Gui, Lili, Shahin Bagheri, Nikolai Strohfeldt, Mario Hentschel, Christine M. Zgrabik, Bernd Metzger, Heiko Linnenbank, Evelyn L. Hu, and Harald Giessen. 2016. “Nonlinear Refractory Plasmonics With Titanium Nitride Nanoantennas”. Nano Letters 16 (9): 5708-13. doi:10.1021/acs.nanolett.6b02376.
Gui, Lili, Shahin Bagheri, Nikolai Strohfeldt, Mario Hentschel, Christine M. Zgrabik, Bernd Metzger, Heiko Linnenbank, Evelyn L. Hu, and Harald Giessen. 2016. “Nonlinear Refractory Plasmonics With Titanium Nitride Nanoantennas”. Nano Letters 16 (9): 5708-13. doi:10.1021/acs.nanolett.6b02376.
Bracher, DO, and Hu. 2016. “Fabrication of High-Quality Nanobeam Photonic Crystal Cavities in 4H Silicon Carbide With Embedded Color Center”. In Advances in Photonics of Quantum Computing, Memory, and Communication. Vol. 9762. SPIE.
Bracher, DO, and Hu. 2016. “Fabrication of High-Quality Nanobeam Photonic Crystal Cavities in 4H Silicon Carbide With Embedded Color Center”. In Advances in Photonics of Quantum Computing, Memory, and Communication. Vol. 9762. SPIE.
Wan, Y., Q. Li, A. Liu, A. Gossard, J. Bowers, E. Hu, and K. Lau. 2016. “Optically Pumped 1.3 Um Room-Temperature InAs Quantum-Dot Micro-Disk Lasers Directly Grown on (001) Silicon”. Optics Letters 4 (7): 1664-7.
Wan, Y., Q. Li, A. Liu, A. Gossard, J. Bowers, E. Hu, and K. Lau. 2016. “Optically Pumped 1.3 Um Room-Temperature InAs Quantum-Dot Micro-Disk Lasers Directly Grown on (001) Silicon”. Optics Letters 4 (7): 1664-7.
Wan, Y., Q. Li, A. Liu, A. Gossard, J. Bowers, E. Hu, and K. Lau. 2016. “Sub-Wavelength InAs Quantum Dot Micro-Disk Lasers Epitaxially Grown on Exact Si (001) Substrates”. Applied Physics Letters 109 (1).
Wan, Y., Q. Li, A. Liu, A. Gossard, J. Bowers, E. Hu, and K. Lau. 2016. “Sub-Wavelength InAs Quantum Dot Micro-Disk Lasers Epitaxially Grown on Exact Si (001) Substrates”. Applied Physics Letters 109 (1).
Wan, Y., Q. Li, A. Gossard, J. Bowers, E. Hu, and K. Lau. 2016. “Temperature Characteristics of Epitaxially Grown InAs Quantum Dot Micro-Disk Lasers on Silicon for On-Chip Light Sources”. Applied Physics Letters 109 (1).
Wan, Y., Q. Li, A. Gossard, J. Bowers, E. Hu, and K. Lau. 2016. “Temperature Characteristics of Epitaxially Grown InAs Quantum Dot Micro-Disk Lasers on Silicon for On-Chip Light Sources”. Applied Physics Letters 109 (1).
Gui, L., S. Bagheri, N. Strohfeldt, M. Hentschel, C. Zgrabik, B. Metzger, H. Linnenbank, E. Hu, and H. Giessen. 2016. “Nonlinear Refractory Plasmonics With Titanium Nitride Nanoantennas”. NanoLetters 16 (9): 5708-13.
Gui, L., S. Bagheri, N. Strohfeldt, M. Hentschel, C. Zgrabik, B. Metzger, H. Linnenbank, E. Hu, and H. Giessen. 2016. “Nonlinear Refractory Plasmonics With Titanium Nitride Nanoantennas”. NanoLetters 16 (9): 5708-13.
Li, Q., Y. Wan, A. Liu, A. Gossard, J. Bowers, E. Hu, and K. Lau. 2016. “1.3 Mm InAs Quantum-Dot Micro-Disk Lasers on V-Groove Patterned and Unpatterned (001) Silicon”. Optics Express 24 (18).
Li, Q., Y. Wan, A. Liu, A. Gossard, J. Bowers, E. Hu, and K. Lau. 2016. “1.3 Mm InAs Quantum-Dot Micro-Disk Lasers on V-Groove Patterned and Unpatterned (001) Silicon”. Optics Express 24 (18).
2015
Zgrabik, Christine M., and Evelyn L. Hu. (December) 2015. “Optimization of Sputtered Titanium Nitride As a Tunable Metal for Plasmonic Applications”. Opt. Mater. Express 5 (12). OSA: 2786–2797. doi:10.1364/OME.5.002786.
Zgrabik, Christine M., and Evelyn L. Hu. (December) 2015. “Optimization of Sputtered Titanium Nitride As a Tunable Metal for Plasmonic Applications”. Opt. Mater. Express 5 (12). OSA: 2786–2797. doi:10.1364/OME.5.002786.
Alternative materials for plasmonic devices have garnered much recent interest. A promising candidate material is titanium nitride. Although there is a substantial body of work on the formation of this material, its use for plasmonic applications requires...
Cui, Shanying, Xingyu Zhang, Tsung-Li Liu, Jonathan Lee, David Bracher, Kenichi Ohno, David Awschalom, and Evelyn Hu. 2015. “Hybrid Plasmonic Photonic Crystal Cavity for Enhancing Emission from Near-Surface Nitrogen Vacancy Centers in Diamond”. ACS Photonics 2: 465-69. doi:10.1021/ph500469e.
Cui, Shanying, Xingyu Zhang, Tsung-Li Liu, Jonathan Lee, David Bracher, Kenichi Ohno, David Awschalom, and Evelyn Hu. 2015. “Hybrid Plasmonic Photonic Crystal Cavity for Enhancing Emission from Near-Surface Nitrogen Vacancy Centers in Diamond”. ACS Photonics 2: 465-69. doi:10.1021/ph500469e.
Cui, Shanying, Andrew Greenspon, Kenichi Ohno, Bryan Myers, Ania Bleszynski Jayich, David Awschalom, and Evelyn Hu. 2015. “Reduced Plasma-Induced Damage to Near-Surface Nitrogen-Vacancy Centers in Diamond”. Nano Letters 15: 2887-91. doi:10.1021/acs.nanolett.5b00457.
Cui, Shanying, Andrew Greenspon, Kenichi Ohno, Bryan Myers, Ania Bleszynski Jayich, David Awschalom, and Evelyn Hu. 2015. “Reduced Plasma-Induced Damage to Near-Surface Nitrogen-Vacancy Centers in Diamond”. Nano Letters 15: 2887-91. doi:10.1021/acs.nanolett.5b00457.