Harvesting Plasmonic Near-Infrared Photons by Hot Hole Transfer in Nonstoichiometric-Semiconductor Plasmonic Heterojunctions

被引:3
|
作者
Ghorai, Nandan [1 ]
Sachdeva, Manvi [1 ]
Kharbanda, Nitika [1 ]
Ghosh, Hirendra N. [1 ,2 ]
机构
[1] Inst Nano Sci & Technol, Mohali 140306, Punjab, India
[2] Bhabha Atom Res Ctr, Radiat & Photochem Div, Mumbai 400085, India
关键词
near-infrared photons; nonstoichiometric; semiconductor plasmonic nanomaterials; plasmon dynamics; hot hole transfer; plasmonic device; DYNAMICS; NANOCRYSTALS; EXTRACTION; CONVERSION; CARRIER; SOLAR;
D O I
10.1021/acsphotonics.2c01897
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Infrared light is an untapped energy source that accounts for half of solar energy. Thus, harvesting near-infrared photons for different applications needs further development for efficient utilization of the whole solar spectrum. Herein, we report harvesting infrared photons by hot hole transfer from a nonstoichiometric plasmonic semiconductor (Cu2-xSe) to an adjacent semiconductor (CdSe) in the heterostructure (HNCs). We found a decrease in transient signal intensity and hole-phonon scattering time in Cu2-xSe/CdSe HNCs compared to the pure Cu2-xSe nanocrystals, attributed to plasmon-induced hot hole transfer. A similar kind of TA kinetics has been observed for 800 and 930 nm laser pulse excitation for Cu2-xSe/CdSe HNCs. The spectroscopic results reveal anomalous carrier populations and slow carrier recovery dynamics at the 1P state of the CdSe phase in Cu2-xSe/CdSe HNCs, further establishing the plasmonic hot hole transfer mechanism. The estimated plasmon-induced hot hole transfer time from the nonstoichiometric semiconductor Cu2-xSe NC system is determined and found to be similar to 177 fs. Fabricated plasmonic thin-film devices exhibit an excellent conductivity (0.15 A at 2 V) and photoconductivity (0.2 A at 2 V) under near-infrared light illustration (Alight = 1200 nm) in a plasmonic HNC system. These results reveal a novel approach for harvesting light photons from the visible to near-infrared region of the solar spectrum and provide a new avenue for developing hot carrier-based device applications of plasmonic semiconductor-based nanomaterials.
引用
收藏
页码:733 / 742
页数:10
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