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Factors influencing photoluminescence and photocarrier lifetime in CdSeTe/ CdMgTe double heterostructures

机译:CdSeTe / CdMgTe双异质结构中影响光致发光和光载流子寿命的因素

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摘要

CdSeTe/CdMgTe double heterostructures were produced with both n-type and unintentionally doped absorber layers. Measurements of the dependence of photoluminescence intensity on excitation intensity were carried out, as well as measurements of time-resolved photoluminescence decay after an excitation pulse. It was found that decay times under very low photon injection conditions are dominated by a non-radiative Shockley-Read-Hall process described using a recombination center with an asymmetric capture cross section, where the cross section for holes is larger than that for electrons. As a result of the asymmetry, the center effectively extends photoluminescence decay by a hole trapping phenomenon. A reduction in electron capture cross section appeared at doping densities over 10~(16)cm~(-3). An analysis of the excitation intensity dependence of room temperature photoluminescence revealed a strong relationship with doping concentration. This allows estimates of the carrier concentration to be made through a non-destructive optical method. Iodine was found to be an effective n-type dopant for CdTe, allowing controllable carrier concentrations without an increased rate of non-radiative recombination.
机译:CdSeTe / CdMgTe双异质结构是由n型吸收层和无意掺杂的吸收层组成的。测量了光致发光强度对激发强度的依赖性,以及测量了激发脉冲后时间分辨的光致发光衰减。发现在非常低的光子注入条件下的衰减时间主要由非辐射的Shockley-Read-Hall过程决定,该过程使用具有不对称俘获横截面的复合中心进行描述,该复合中心的空穴横截面大于电子的横截面。由于不对称,中心由于空穴俘获现象而有效地扩展了光致发光衰减。在超过10〜(16)cm〜(-3)的掺杂浓度下,电子俘获截面减小。对室温光致发光的激发强度依赖性的分析显示与掺杂浓度有很强的关系。这允许通过非破坏性光学方法来估计载流子浓度。已发现碘是CdTe的有效n型掺杂剂,可实现可控制的载流子浓度,而不会增加非辐射重组的速率。

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  • 来源
    《Journal of Applied Physics》 |2016年第16期|165305.1-165305.7|共7页
  • 作者单位

    Materials Science, Engineering, and Commercialization Program, Texas State University, 601 University Drive, San Marcos, Texas 78666, USA;

    National Renewable Energy Laboratory, 15013 Denver West Parkway MS RSF200, Golden, Colorado 80401, USA;

    Department of Physics, Texas State University, 601 University Drive, San Marcos, Texas 78666, USA;

    Materials Science, Engineering, and Commercialization Program, Texas State University, 601 University Drive, San Marcos, Texas 78666, USA;

    Materials Science, Engineering, and Commercialization Program, Texas State University, 601 University Drive, San Marcos, Texas 78666, USA;

    Materials Science, Engineering, and Commercialization Program, Texas State University, 601 University Drive, San Marcos, Texas 78666, USA;

    Materials Science, Engineering, and Commercialization Program, Texas State University, 601 University Drive, San Marcos, Texas 78666, USA;

    Materials Science, Engineering, and Commercialization Program, Texas State University, 601 University Drive, San Marcos, Texas 78666, USA;

    Materials Science, Engineering, and Commercialization Program, Texas State University, 601 University Drive, San Marcos, Texas 78666, USA;

    Department of Physics, Texas State University, 601 University Drive, San Marcos, Texas 78666, USA;

    National Renewable Energy Laboratory, 15013 Denver West Parkway MS RSF200, Golden, Colorado 80401, USA;

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