Fast thermal relaxation in cavity-coupled graphene bolometers with a Johnson noise read-out
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D. Englund | J. Hone | Ren-Jye Shiue | Cheng Tan | Hyeongrak Choi | D. Efetov | Yuanda Gao | G. Grosso | Jiabao Zheng | K. Fong | E. D. Walsh | C. Peng | B. Skinner | C. Tan | R. Shiue
[1] D. Englund,et al. Graphene-based Josephson junction single photon detector , 2017, 1703.09736.
[2] G. Cerullo,et al. Out-of-plane heat transfer in van der Waals stacks through electron–hyperbolic phonon coupling , 2017, Nature Nanotechnology.
[3] A. Marini,et al. Theory of graphene saturable absorption , 2016, 1605.06499.
[4] R. Myers-Ward,et al. Epitaxial graphene quantum dots for high-performance terahertz bolometers. , 2015, Nature nanotechnology.
[5] T. Taniguchi,et al. Observation of the Dirac fluid and the breakdown of the Wiedemann-Franz law in graphene , 2015, Science.
[6] Dirk Englund,et al. High-Responsivity Graphene-Boron Nitride Photodetector and Autocorrelator in a Silicon Photonic Integrated Circuit. , 2015, Nano letters.
[7] M. Rooks,et al. Electron-phonon cooling in large monolayer graphene devices , 2015, 1505.07034.
[8] L Piatkowski,et al. Generation of photovoltage in graphene on a femtosecond timescale through efficient carrier heating. , 2015, Nature nanotechnology.
[9] Dirk Englund,et al. High-speed electro-optic modulator integrated with graphene-boron nitride heterostructure and photonic crystal nanocavity. , 2014, Nano letters.
[10] Robert A. Barton,et al. Broadband Coherent Absorption in Chirped-Planar-Dielectric Cavities for 2D-Material-Based Photovoltaics and Photodetectors , 2014 .
[11] Shanhui Fan,et al. Total Absorption in a Graphene Monolayer in the Optical Regime by Critical Coupling with a Photonic Crystal Guided Resonance , 2014 .
[12] Xiaosong Wu,et al. Highly sensitive hot electron bolometer based on disordered graphene , 2013, Scientific Reports.
[13] Jr.,et al. Enhanced photodetection in graphene-integrated photonic crystal cavity , 2013, 1311.2080.
[14] Xu Du,et al. Graphene-based Bolometers , 2013, 1308.4065.
[15] M. D. Shaw,et al. Measurement of the electronic thermal conductance channels and heat capacity of graphene at low temperature , 2013, 1308.2265.
[16] T. Murphy,et al. Sensitive room-temperature terahertz detection via the photothermoelectric effect in graphene. , 2013, Nature nanotechnology.
[17] Boris S. Karasik,et al. Performance of graphene thermal photon detectors , 2012, 1210.5495.
[18] Dirk Englund,et al. Strong enhancement of light-matter interaction in graphene coupled to a photonic crystal nanocavity. , 2012, Nano letters.
[19] D. Ralph,et al. Photocurrent measurements of supercollision cooling in graphene , 2012, Nature Physics.
[20] K. Loh,et al. Graphene photonics, plasmonics, and broadband optoelectronic devices. , 2012, ACS nano.
[21] K. Schwab,et al. Ultrasensitive and Wide-Bandwidth Thermal Measurements of Graphene at Low Temperatures , 2012, 1202.5737.
[22] Aaron M. Jones,et al. Ultrafast hot-carrier-dominated photocurrent in graphene. , 2012, Nature nanotechnology.
[23] M. Fuhrer,et al. Dual-gated bilayer graphene hot-electron bolometer. , 2011, Nature nanotechnology.
[24] Xu Du,et al. Bolometric response in graphene based superconducting tunnel junctions , 2011, 1110.5623.
[25] Takashi Taniguchi,et al. Hot Carrier–Assisted Intrinsic Photoresponse in Graphene , 2011, Science.
[26] A. Balandin. Thermal properties of graphene and nanostructured carbon materials. , 2011, Nature materials.
[27] K. Shepard,et al. Boron nitride substrates for high-quality graphene electronics. , 2010, Nature nanotechnology.
[28] J. Misewich,et al. Measurement of the optical conductivity of graphene. , 2008, Physical review letters.
[29] P. Kim,et al. Dirac charge dynamics in graphene by infrared spectroscopy , 2008, 0807.3780.
[30] Susumu Noda,et al. Highly efficient multi-channel drop filter in a two-dimensional hetero photonic crystal. , 2006, Optics express.
[31] R. Dicke. The measurement of thermal radiation at microwave frequencies. , 1946, The Review of scientific instruments.
[32] N. Peres,et al. 1 Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene , 2008 .