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Photoresponse of Natural van der Waals Heterostructures
被引:44
|作者:
Ray, Kyle
[1
]
Yore, Alexander E.
[1
]
Mou, Tong
[2
]
Jha, Sauraj
[1
]
Smithe, Kirby K. H.
[3
]
Wang, Bin
[2
]
Pop, Eric
[3
]
Newaz, A. K. M.
[1
]
机构:
[1] San Francisco State Univ, Dept Phys & Astron, San Francisco, CA 94132 USA
[2] Univ Oklahoma, Sch Chem Biol & Mat Engn, Norman, OK 73019 USA
[3] Stanford Univ, Dept Elect Engn, Stanford, CA 94305 USA
来源:
关键词:
van der Waals heterostructure;
photocurrent spectroscopy;
photodetectors;
franckeite;
electronic transport;
density functional theory;
CRYSTAL;
FRANCKEITE;
SCATTERING;
GRAPHENE;
SNS2;
D O I:
10.1021/acsnano.7b01918
中图分类号:
O6 [化学];
学科分类号:
0703 ;
摘要:
Van der Waals heterostructures consisting of two-dimensional materials offer a platform to obtain materials by design and are very attractive owing to unique electronic states. Research on 2D van der Waals heterostructures (vdWH) has so far been focused on fabricating individually stacked atomically thin unary or binary crystals. Such systems include graphene, hexagonal boron nitride, and members of the transition metal dichalcogenide family. Here we present our experimental study of the optoelectronic properties of a naturally occurring vdWH, known as franckeite, which is a complex layered crystal composed of lead, tin, antimony, iron, and sulfur. We present here that thin film franckeite (60 nm < d < 100 nm) behaves as a narrow band gap semiconductor demonstrating a wide-band photoresponse. We have observed the band-edge transition at similar to 1500 nm (similar to 830 meV) and high external quantum efficiency (EQE approximate to 3%) at room temperature. Laser-power-resolved and temperature-resolved photocurrent measurements reveal that the photocarrier generation and recombination are dominated by continuously distributed trap states within the band gap. To understand wavelength-resolved photocurrent, we also calculated the optical absorption properties via density functional theory. Finally, we have shown that the device has a fast photoresponse with a rise time as fast as similar to 1 ms. Our study provides a fundamental understanding of the optoelectronic behavior in a complex naturally occurring vdWH, and may pave an avenue toward developing nanoscale optoelectronic devices with tailored properties.
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页码:6024 / 6030
页数:7
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