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A negative photoconductivity photodetector based on two-dimensional Nb3Cl8
Bom Lee1, Xiaojie Zhang1, Jinsu Kang1
1School of Advanced Materials Science & Engineering, Sungkyunkwan University, Suwon 16419, Korea. choi@skku.edu.
Nanoscale
|October 17, 2024
Summary
Negative photoconductivity (NPC) photodetectors offer energy-efficient photodetection. Nb3Cl8 exhibits consistent NPC across a wide spectrum, showing promise for advanced optoelectronics.
Area of Science:
- Materials Science
- Condensed Matter Physics
- Optoelectronics
Background:
- Negative photoconductivity (NPC) photodetectors are explored for energy-efficient photodetection.
- Two-dimensional (2D) materials are ideal for NPC due to surface properties and tunable bandgaps.
- 2D Nb3Cl8, a metal halide with a kagome lattice, shows potential for NPC due to defect formation.
Purpose of the Study:
- To investigate the NPC characteristics of 2D Nb3Cl8.
- To fabricate and characterize Nb3Cl8-based photodetectors.
- To understand the underlying mechanism of NPC in Nb3Cl8.
Main Methods:
- Synthesis of Nb3Cl8 single crystals using chemical vapor transport (CVT).
- Fabrication of field-effect transistors (FETs) using Nb3Cl8.
- Characterization of photodetector performance, including responsivity and NPC behavior across a wide wavelength range (400-1050 nm).
Main Results:
- Nb3Cl8 FETs demonstrated electron mobility of 4.24 × 10^-3 cm^2 V^-1 s^-1 and a high on/off ratio (1.42 × 10^4).
- Nb3Cl8 photodetectors exhibited consistent NPC behavior over a broad spectral range (400-1050 nm).
- A high responsivity of 156.82 mA W^-1 was recorded at 400 nm.
Conclusions:
- The NPC phenomenon in Nb3Cl8 is attributed to defect-induced carrier trapping within the bandgap.
- Nb3Cl8 shows significant promise as an efficient material for energy-saving photodetectors.
- The study highlights Nb3Cl8's potential for diverse optoelectronic applications.

