多层非晶硒和硒碲光电探测器的光谱性能。

ACS Applied Optical Materials Pub Date : 2025-02-25 eCollection Date: 2025-03-28 DOI:10.1021/acsaom.4c00475
Hamid Mirzanezhad, Kaitlin Hellier, Max Teicheira, Shiva Abbaszadeh
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引用次数: 0

摘要

光电二极管是用于医学成像、高能物理和紫外-可见传感器的重要半导体器件。最近的研究进展再次激发了人们探索传统材料合金用于探测器制造的兴趣。将无定形硒(a-Se)与其他材料制成合金有可能提高器件在响应度和量子转换效率(QCE)方面的性能,并解决稳定 a-Se 的一些局限性。为了提高灵敏度和传输特性,我们探索了垂直和横向架构的多层器件。我们使用了稳定 a-Se 和硒-碲(Se-Te)合金的不同组合,并比较了每种合金作为光吸收层的实施情况,旨在确定根据波长吸收深度定制合金是否能提高探测器的性能。对于垂直装置,薄(90 纳米)a-Se 层与厚(15 微米)Se-Te 层的搭配被证明是最有效的装置,既提高了长波长的响应,又提高了整体 QCE,在紫外波段比单层 a-Se 装置提高了 13-15%,在红外波段提高了 2.5%。在横向器件中,a-Se 层和 Se-Te 层的组合性能优于单层稳定的 a-Se;然而,固体 Se-Te 层的 QCE 最高,在 355 纳米和 15 V/μm 下的峰值效率为 30%。这些研究结果表明了多层结构如何影响器件性能,从而更好地指导基于最终应用、所需波长灵敏度和效率的器件架构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spectral Performance of Multilayer Amorphous Selenium and Selenium-Tellurium Photodetectors.

Photodiodes are an essential semiconductor device used in medical imaging, high-energy physics, and UV-visible sensors. Recent progress has renewed interest in exploring alloys of traditional materials for detector fabrication. Alloying amorphous selenium (a-Se) with other materials can potentially improve device performance in responsivity and quantum conversion efficiency (QCE) and address some limitations of stabilized a-Se. To increase the sensitivity and transport properties, we explore multilayer devices with vertical and lateral architectures. We use different combinations of stabilized a-Se and selenium-tellurium (Se-Te) alloys and compare implementing each as the light-absorbing layer, aiming to determine whether tailoring the alloys based on the wavelength absorption depth could improve the detector's performance. For vertical devices, a thin (90 nm) a-Se layer paired with a thick (15 μm) Se-Te layer proved to be the most effective device, improving both the response at long wavelengths and overall QCE, with a 13-15% improvement over single-layer a-Se devices in the UV and 2.5% improvement at red wavelengths. In the lateral devices, the combination of a-Se and Se-Te layers outperformed a single layer of stabilized a-Se; however, a solid layer of Se-Te gave the highest QCE with a peak efficiency of 30% at 355 nm and 15 V/μm. These findings demonstrate how multilayer structures can affect device performance, better guiding device architecture based on the end application, desired wavelength sensitivity, and efficiency.

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来源期刊
ACS Applied Optical Materials
ACS Applied Optical Materials 材料科学-光学材料-
CiteScore
1.10
自引率
0.00%
发文量
0
期刊介绍: ACS Applied Optical Materials is an international and interdisciplinary forum to publish original experimental and theoretical including simulation and modeling research in optical materials complementing the ACS Applied Materials portfolio. With a focus on innovative applications ACS Applied Optical Materials also complements and expands the scope of existing ACS publications that focus on fundamental aspects of the interaction between light and matter in materials science including ACS Photonics Macromolecules Journal of Physical Chemistry C ACS Nano and Nano Letters.The scope of ACS Applied Optical Materials includes high quality research of an applied nature that integrates knowledge in materials science chemistry physics optical science and engineering.
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