基于Cu2SnS3/TiO2纳米棒异质结的自供电光电探测器

IF 5.5 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY ACS Applied Nano Materials Pub Date : 2025-02-13 DOI:10.1021/acsanm.4c06425
Kumaar Swamy Reddy B, Ganapathy Veerappan, Sushmee Badhulika* and Pramod H. Borse*, 
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引用次数: 0

摘要

溶液处理光电探测器由于其多模态功能、易于制造和与各种衬底的兼容性而引起了人们的极大兴趣。然而,这些设备经常面临诸如有限的性能和缓慢的响应时间等挑战。本研究报道了一种零偏置光电探测器的开发,该探测器采用p-n结异质结构,将环境友好的硫化铜锡(Cu2SnS3, CTS)与低温处理的TiO2纳米棒结合在一起。CTS是一种无毒且富含硫族化合物,通过化学浴沉积的方法将CTS沉积在水热合成的TiO2纳米棒上,得到了坚固高效的CTS/TiO2异质结构。XRD分析显示TiO2为金红石相,Cu2SnS3为四边形-纤锌矿混合相。异质结在紫外-可见光谱范围内具有广谱吸收,其中TiO2 (3.1 eV)主要吸收紫外光,Cu2SnS3 (1.75 eV)有效覆盖可见光谱。I-V特性描述了一种非线性关系,表明在p-n结处存在内置电位,这增强了照明下光电流的产生。值得注意的是,该探测器在0v下有效工作,突出了其自供电能力。时间响应分析显示快速上升和下降时间(~ 40 ms),强调了这种溶液处理异质结构用于快速可靠的光检测的潜力。该探测器具有低暗电流(477 nA)、高光电流(15.7 μA)、高开/关比(33)和高响应度(50 mA/W)等优异的性能指标。纳米棒异质结构为Cu2SnS3和TiO2之间提供了统一的连接,从而为光载流子的收集提供了有效的途径。所演示的CTS-TiO2纳米棒探测器有望开发出可持续的光电探测器,用于各种潜在应用,即环境监测、医疗诊断和便携式电子产品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Self-Powered Photodetectors Based on Cu2SnS3/TiO2 Nanorod Heterojunctions

Solution-processed photodetectors have attracted significant research interest due to their multimodal functionalities, ease of fabrication, and compatibility with various substrates. However, these devices often face challenges such as limited performance and slow response times. This study reports the development of a zero-bias photodetector employing a p–n junction heterostructure that combines environmentally benign copper tin sulfide (Cu2SnS3, CTS) with low-temperature-processed TiO2 nanorods. CTS, a nontoxic and earth-abundant chalcogenide, was deposited onto hydrothermally synthesized TiO2 nanorods via chemical bath deposition, resulting in a robust and efficient CTS/TiO2 heterostructure. XRD analysis revealed the rutile phase of TiO2 and the mixed tetragonal-wurtzite phases of Cu2SnS3. The heterojunction demonstrated broad spectral absorption across the UV–visible range, with TiO2 (3.1 eV) absorbing primarily UV light and Cu2SnS3 (1.75 eV) effectively covering the visible spectrum. IV characteristics depicted a nonlinear relationship, indicating the presence of a built-in potential at the p–n junction, which enhances photocurrent generation under illumination. Notably, the detector operates efficiently at 0 V, highlighting its self-powered capability. Temporal response analysis revealed rapid rise and fall times (∼40 ms), emphasizing the potential of this solution-processed heterostructure for fast and reliable photodetection. The detector exhibited excellent performance metrics, including a low dark current (477 nA), high photocurrent (15.7 μA), high ON/OFF ratio (33), and high responsivity (50 mA/W). The nanorod heterostructure architecture offers conformable junction between Cu2SnS3 and TiO2 and thereby offers an efficient pathway for photocarrier collection. The demonstrated CTS-TiO2 nanorod detector is promising for the development of sustainable photodetectors for various potential applications, viz., environmental monitoring, medical diagnostics, and portable electronics.

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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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