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Photon Number Resolving Detectors (PNRDs) are devices capable of measuring the number of photons present in an incident optical beam, enabling light sources to be measured and characterized at the quantum level.
Secure quantum key distribution with realistic devices,
F. Xu, X. Ma, Q. Zhang, H.-K. Lo, J.-W. Pan, · 1903
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J.-Y. Wu, N. Toda, H. F. Hofmann, · 1903
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Infrared corrected Sellmeier coefficients for congruently grown lithium niobate and 5 mol% magnesium oxide -doped lithium niobate,
D. E. Zelmon, D. L. Small, D. Jundt, · 1997
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High-efficiency photon-number detection for quantum information processing,
E. Waks, K. Inoue, W. D. Oliver, E. Diamanti, Y. Yamamoto, · 2003
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Demonstration of a low-noise near-infrared photon counter with multiphoton discrimination,
A. J. Miller, S. W. Nam, J. M. Martinis, A. V. Sergienko, · 2003
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Counting photoelectrons in the response of a photomultiplier tube to single picosecond light pulses,
G. Zambra, M. Bondani, A. S. Spinelli, F. Paleari, A. Andreoni, · 2004
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Photon number resolving in Geiger mode avalanche photodiode photon counters,
J. Blazej, · 2004
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Single photon source characterization with a superconducting single photon detector,
R. H. Hadfield, M. J. Stevens, S. S. Gruber, A. J. Miller, R. E. Schwall, R. P. Mirin, S. W. Nam, · 2005
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Counting near-infrared single-photons with 95% efficiency,
A. E. Lita, A. J. Miller, S. W. Nam, · 2008
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Optical properties of superconducting nanowire single-photon detectors,
V. Anant, A. J. Kerman, E. A. Dauler, J. K. W. Yang, K. M. Rosfjord, K. K. Berggren, · 2008
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Efficiently Coupling Light to Superconducting Nanowire Single-Photon Detectors,
X. Hu, C. W. Holzwarth, D. Masciarelli, E. A. Dauler, K. K. Berggren, · 2009
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Titanium-based transition-edge photon number resolving detector with 98% detection efficiency with index-matched small-gap fiber coupling,
D. Fukuda, G. Fujii, T. Numata, K. Amemiya, A. Yoshizawa, H. Tsuchida, H. Fujino, H. Ishii, T. Itatani, S. Inoue, T. Zama, · 2011
Earlier work this paper cites.
Waveguide photon-number-resolving detectors for quantum photonic integrated circuits,
D. Sahin, A. Gaggero, Z. Zhou, S. Jahanmirinejad, F. Mattioli, R. Leoni, J. Beetz, M. Lermer, M. Kamp, S. Höfling, A. Fiore, · 2013
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Photon-counting laser ranging with InGaAs/InP avalanche photodiode in the passively quenched and 1-GHz sinusoidally gated,
J. Huang, M. Ren, Y. Liang, Z. Wang, X. Wang, W. Kong, E. Wu, G. Wu, H. Zeng, · 2014
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Ultimate low system dark-count rate for superconducting nanowire single-photon detector,
H. Shibata, K. Shimizu, H. Takesue, Y. Tokura, · 2015
Cited alongside, same era.
On-chip detection of non-classical light by scalable integration of single-photon detectors,
F. Najafi, J. Mower, N. C. Harris, F. Bellei, A. Dane, C. Lee, X. Hu, P. Kharel, F. Marsili, S. Assefa, K. K. Berggren, D. Englund, · 2015
Cited alongside, same era.
G. Harder, T. J. Bartley, A. E. Lita, S. W. Nam, T. Gerrits, C. Silberhorn, · 2016
Cited alongside, same era.
Hybrid quantum key distribution using coherent states and photon-number-resolving detectors,
M. Cattaneo, M. G. A. Paris, S. Olivares, · 2018
Cited alongside, same era.
Superconducting Nanowire Photon-Number-Resolving Detectors Integrated with Current Reservoirs,
K. Zou, Y. Meng, L. Xu, N. Hu, Z. Wang, X. Hu, · 2020
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Operation of parallel SNSPDs at high detection rates,
M. Perrenoud, M. Caloz, E. Amri, C. Autebert, C. Schönenberger, H. Zbinden, F. Bussières, · 2021
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Superconducting nanowire single-photon detectors: A perspective on evolution, state-of-the-art, future developments, and applications,
I. Esmaeil Zadeh, J. Chang, J. W. N. Los, S. Gyger, A. W. Elshaari, S. Steinhauer, S. N. Dorenbos, V. Zwiller, · 2021
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Waveguide integrated hot electron bolometer for classical and quantum photonics,
F. Martini, S. Cibella, A. Gaggero, F. Mattioli, R. Leoni, · 2021
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Quantum detector tomography of a superconducting nanostrip photon-number-resolving detector,
M. Endo, T. Sonoyama, M. Matsuyama, F. Okamoto, S. Miki, M. Yabuno, F. China, H. Terai, A. Furusawa, · 2021
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Integrated photonic platform for quantum information with continuous variables,
F. Lenzini, J. Janousek, O. Thearle, M. Villa, B. Haylock, S. Kasture, L. Cui, H.-P. Phan, D. V. Dao, H. Yonezawa, P. K. Lam, E. H. Huntington, M. Lobino, · 2018
Cited alongside, same era.
Status and potential of lithium niobate on insulator (lnoi) for photonic integrated circuits,
A. Boes, B. Corcoran, L. Chang, J. Bowers, A. Mitchell, · 2018
Cited alongside, same era.
Hotspot relaxation time of nbn superconducting nanowire single-photon detectors on various substrates,
L. Zhang, L. You, X. Yang, J. Wu, C. Lv, Q. Guo, W. Zhang, H. Li, W. Peng, Z. Wang, X. Xie, · 2018
Cited alongside, same era.
Quantum metrology of solid-state single-photon sources using photon-number-resolving detectors,
M. von Helversen, J. Böhm, M. Schmidt, M. Gschrey, J.-H. Schulze, A. Strittmatter, S. Rodt, J. Beyer, T. Heindel, S. Reitzenstein, · 2019
Cited alongside, same era.
Quantum tomography of light states by photon-number-resolving detectors,
S. Olivares, A. Allevi, G. Caiazzo, M. G. A. Paris, M. Bondani, · 2019
Cited alongside, same era.
Amplitude-multiplexed readout of single photon detectors based on superconducting nanowires,
A. Gaggero, F. Martini, F. Mattioli, F. Chiarello, R. Cernansky, A. Politi, R. Leoni, · 2019
Cited alongside, same era.
Evaluating the performance of photon-number-resolving detectors,
M. Jönsson, G. Björk, · 2019
Cited alongside, same era.
Improved second harmonic performance in periodically poled LNOI waveguides through engineering of lateral leakage,
A. Boes, L. Chang, M. Knoerzer, T. G. Nguyen, J. D. Peters, J. E. Bowers, A. Mitchell, · 2019
Cited alongside, same era.
Later among the works it cites.
Quantum imaging with a photon counting camera,
O. Wolley, T. Gregory, S. Beer, T. Higuchi, M. Padgett, · 2022
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Realistic conversion of single-mode squeezed vacuum state to large-amplitude high-fidelity Schrödinger cat states by inefficient photon number resolving detection,
D. A. Kuts, M. S. Podoshvedov, B. A. Nguyen, S. A. Podoshvedov, · 2022
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Picosecond pulsed squeezing in thin-film lithium niobate strip-loaded waveguides at telecommunication wavelengths,
D. Peace, A. Zappacosta, R. Cernansky, B. Haylock, A. Boes, A. Mitchell, M. Lobino, · 2022
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Fractal superconducting nanowires detect infrared single photons with 84% system detection efficiency, 1.02 polarization sensitivity, and 20.8 ps timing resolution,
Y. Meng, K. Zou, N. Hu, L. Xu, X. Lan, S. Steinhauer, S. Gyger, V. Zwiller, X. Hu, · 2022
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A 100-pixel photon-number-resolving detector unveiling photon statistics,
R. Cheng, Y. Zhou, S. Wang, M. Shen, T. Taher, H. X. Tang, · 2023
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Hybrid near-optimum binary receiver with realistic photon-number-resolving detectors,
M. N. Notarnicola, M. G. A. Paris, S. Olivares, · 2023
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Superconducting nanowire single-photon detectors: physics and applications,
C. M. Natarajan, M. G. Tanner, R. H. Hadfield, · 2048
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Detection mechanism of superconducting nanowire single-photon detectors,
A. Engel, J. J. Renema, K. Il’in, A. Semenov, · 2048
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High-efficiency photon-number-resolving detector for improving heralded single-photon sources,
L. Stasi, P. Caspar, T. Brydges, H. Zbinden, F. Bussières, R. Thew, · 2058
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