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本文引用的文献

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Structure of Amorphous Selenium: Small Ring, Big Controversy.非晶态硒的结构:小环,大争议。
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Improved temporal performance and optical quantum efficiency of avalanche amorphous selenium for low dose medical imaging.用于低剂量医学成像的雪崩非晶硒的时间性能和光学量子效率得到改善。
J Med Imaging (Bellingham). 2024 Jan;11(1):013502. doi: 10.1117/1.JMI.11.1.013502. Epub 2024 Jan 13.
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Tuning Amorphous Selenium Composition with Tellurium to Improve Quantum Efficiency at Long Wavelengths and High Applied Fields.通过碲调整非晶态硒的成分以提高长波长和高应用场下的量子效率。
ACS Appl Electron Mater. 2023 May 3;5(5):2678-2685. doi: 10.1021/acsaelm.3c00150. eCollection 2023 May 23.
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Modeling Dark Current Conduction Mechanisms and Mitigation Techniques in Vertically Stacked Amorphous Selenium-Based Photodetectors.垂直堆叠的非晶硒基光电探测器中暗电流传导机制建模及缓解技术
ACS Appl Electron Mater. 2021 Aug 24;3(8):3538-3546. doi: 10.1021/acsaelm.1c00444. Epub 2021 Aug 2.
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Near-infrared dyes for two-photon absorption in the short-wavelength infrared: strategies towards optical power limiting.用于短波长红外双光子吸收的近红外染料:光限幅策略。
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Evaporated Se Te Thin Films with Tunable Bandgaps for Short-Wave Infrared Photodetectors.用于短波红外光电探测器的带隙可调蒸发硒化碲薄膜。
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Vacuum-Ultraviolet Photon Detections.真空紫外光子探测
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Photon counting performance of amorphous selenium and its dependence on detector structure.非晶态硒的光子计数性能及其对探测器结构的依赖性。
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10
Reversible amorphous-crystalline phase changes in a wide range of Se(1-x)Te(x) alloys studied using ultrafast differential scanning calorimetry.使用超快差示扫描量热法研究了多种硒(1-x)碲(x)合金中可逆的非晶-晶相变化。
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多层非晶硒和硒碲光电探测器的光谱性能

Spectral Performance of Multilayer Amorphous Selenium and Selenium-Tellurium Photodetectors.

作者信息

Mirzanezhad Hamid, Hellier Kaitlin, Teicheira Max, Abbaszadeh Shiva

机构信息

Department of Electrical and Computer Engineering, University of California-Santa Cruz, Santa Cruz, California 95064, United States.

出版信息

ACS Appl Opt Mater. 2025 Feb 25;3(3):646-655. doi: 10.1021/acsaom.4c00475. eCollection 2025 Mar 28.

DOI:10.1021/acsaom.4c00475
PMID:40176917
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11959609/
Abstract

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.

摘要

光电二极管是一种重要的半导体器件,用于医学成像、高能物理和紫外可见传感器。最近的进展重新激发了人们对探索用于探测器制造的传统材料合金的兴趣。将非晶硒(a-Se)与其他材料合金化可能会提高器件在响应度和量子转换效率(QCE)方面的性能,并解决稳定化a-Se的一些局限性。为了提高灵敏度和传输特性,我们探索了具有垂直和横向结构的多层器件。我们使用稳定化a-Se和硒碲(Se-Te)合金的不同组合,并比较将每种组合用作光吸收层的情况,旨在确定根据波长吸收深度定制合金是否可以提高探测器的性能。对于垂直器件,一个薄的(90纳米)a-Se层与一个厚的(15微米)Se-Te层配对被证明是最有效的器件,它提高了长波长响应和整体QCE,在紫外波段比单层a-Se器件提高了13-15%,在红色波长处提高了2.5%。在横向器件中,a-Se和Se-Te层的组合优于单层稳定化a-Se;然而,一个固体Se-Te层具有最高的QCE,在355纳米和15伏/微米时峰值效率为30%。这些发现证明了多层结构如何影响器件性能,更好地根据最终应用、所需波长灵敏度和效率来指导器件架构。