[1] |
ZHANG W W, KASUN L C, WANG Q J, et al. A review of machine learning for near⁃infrared spectroscopy[J]. Sensors, 2022, 22(24): 9764.
|
[2] |
BRUNS O T, BISCHOF T S, HARRIS D K, et al. Next⁃generation in vivo optical imaging with short⁃wave infrared quantum dots[J]. Nature Biomedical Engineering, 2017, 1: 0056.
|
[3] |
HUANG X, LIU Y W, LIU G C, et al. Short wave infrared synaptic phototransistor with ambient light adaptability for flexible artificial night visual system[J]. Advanced Functional Materials, 2023, 33(1): 2208836.
|
[4] |
GARCÍA DE ARQUER F P, ARMIN A, MEREDITH P, et al. Solution⁃processed semiconductors for next⁃generation photodetectors[J]. Nature Reviews Materials, 2017, 2(3): 16100.
|
[5] |
KIM D Y, LAI T H, LEE J W, et al. Multi⁃spectral imaging with infrared sensitive organic light emitting diode[J]. Scientific Reports, 2014, 4: 5946.
|
[6] |
WANG R L, WU X, XU K M, et al. Highly efficient inverted structural quantum dot solar cells[J]. Advanced Materials, 2018, 30(7): 1704882.
|
[7] |
WISE F W. Lead salt quantum dots: The limit of strong quantum confinement[J]. Accounts of Chemical Research, 2000, 33(11): 773⁃780.
|
[8] |
HEER S, KÖMPE K, GÜDEL H U, et al. Highly efficient multicolour upconversion emission in transparent colloids of lanthanide⁃doped NaYF4 nanocrystals[J]. Advanced Materials, 2004, 16(23⁃24): 2102⁃2105.
|
[9] |
VANORMAN Z A, NIENHAUS L. Bulk metal halide perovskites as triplet sensitizers: Taking charge of upconversion[J]. ACS Energy Letters, 2021, 6(10): 3686⁃3694.
|
[10] |
TANG H D, SHI K M, ZHANG N, et al. Up⁃conversion device based on quantum dots with high⁃conversion efficiency over 6%[J]. IEEE Access, 2020, 8: 71041⁃71049.
|
[11] |
LI X, GONG H M, SHAO X M, et al. Recent advances in short wavelength infrared InGaAs focal plane arrays[J]. Journal of Infrared and Millimeter Waves, 2022, 41(1): 2022001.
|
[12] |
ZHAO J Z, JI S M, GUO H M. Triplet⁃triplet annihilation based upconversion: From triplet sensitizers and acceptors to spectra tuning[J]. Organic Letters, 2011(13): 1568⁃1571.
|
[13] |
LU J X, ZHENG Y, CHEN Z J, et al. Optical upconversion devices based on photosensitizer⁃doped organic light⁃emitting diodes[J]. Applied Physics Reviews, 2007, 91(20): 201107.
|
[14] |
KONSTANTATOS G, SARGENT E H. Erratum: Nanostructured materials for photon detection[J]. Nature Nanotechnology, 2010, 5(12): 885.
|
[15] |
KIM D Y, CHOUDHURY K R, LEE J W, et al. PbSe nanocrystal⁃based infrared⁃to⁃visible up⁃conversion device[J]. Nano Letters, 2011, 11(5): 2109⁃2113.
|
[16] |
ZHOU W J, SHANG Y Q, GARCÍA DE ARQUER F P, et al. Solution⁃processed upconversion photodetectors based on quantum dots[J]. Nature Electronics, 2020, 3(5): 251⁃258.
|
[17] |
LIU J J, YANG X X, XU Q L, et al. Unraveling the efficiency losses and improving methods in quantum dot⁃based infrared up⁃conversion photodetectors[J]. Opto⁃Electronic Science, 2024, 3(4): 4⁃15.
|
[18] |
WANG H, ZHOU W J, LIU Y L, et al. Infrared visualization based on quantum dot upconversion photodetector using perovskite emitter[J]. Device, 2025, 3(4): 100661.
|
[19] |
MU G, LIN Y Y, FU K R, et al. Infrared visualized snakes⁃inspired artificial vision systems with CMOS sensors⁃integrated upconverters[J]. Light: Science & Applications, 2025, 14(1): 282.
|
[20] |
YU H, KIM D, LEE J, et al. High⁃gain infrared⁃to⁃visible upconversion light⁃emitting phototransistors[J]. Nature Photonics, 2016, 10(2): 129⁃134.
|
[21] |
ZHANG N, TANG H D, SHI K M, et al. High⁃performance all⁃solution⁃processed quantum dot near⁃infrared⁃to⁃visible upconversion devices for harvesting photogenerated electrons[J]. Applied Physics Letters, 2019, 115(22): 221103.
|
[22] |
KWON T H, KIM H B, KWAK D G, et al. Quantum dot⁃based three⁃stack tandem near⁃infrared⁃to⁃visible optoelectric upconversion devices[J]. ACS Nano, 2024, 18(33): 21957⁃21965.
|
[23] |
YANG X X, LI Y B, LIU J J, et al. High⁃performance up⁃conversion photodetectors with zero⁃barrier interconnection via self⁃assembled surface dipoles[J]. Nano Letters, 2024, 24(30): 9385⁃9390.
|
[24] |
GE Z H, YANG S Y, ZHANG Z H, et al. ZnO⁃based photomultiplication⁃type infrared photodetectors for ultrasensitive upconverters[J]. Small, 2025, 21(11): 2411433.
|
[25] |
PAN Y J, WU C Y, HU H L, et al. High⁃performance quantum dot near⁃infrared upconversion devices based on the hole⁃only injection mechanidsm[J]. The Journal of Physical Chemistry Letters, 2025, 16(2): 618⁃626.
|
[26] |
OH S, YOON S Y, JUNG B K, et al. Designing a quantum dot upconversion infrared image sensor via a photomultiplication mechanism[J]. ACS Energy Letters, 2024, 9(12): 5914⁃5923.
|