首页> 外文会议>Symposium H, "Progress in semiconductor materials for optoelectronic applications" >Continuous and time resolved optically detected magnetic resonance studies of InP nanoparticles
【24h】

Continuous and time resolved optically detected magnetic resonance studies of InP nanoparticles

机译:连续和时间解决了InP纳米粒子的光学检测到的磁共振研究

获取原文

摘要

Carriers in small colloidal InP nanoparticles are in strong quantum confinement regime. The low temperature photoluminescence spectrum of InP nanoparticles is composed of an excitonic luminescence at high energies and a non-excitonic defect emission band at lower energies. HF etching of the nanoparticles reduces the defect emission and enhances the exciton process. In this work we apply optically detected magnetic resonance spectroscopy (ODMR) both in continuous wave and time resolved mode (TR-ODMR) to study the defect luminescence in InP nanoparticles. The results show that the defect luminescence originates from weakly coupled electron-hole pair, where the electron is trapped at the surface by phosphorous vacancy, V{sub}p, and the hole is located at the valence band. Additionally, the results suggest that the non-etched samples are dominated by V{sub}p at the surface. Those are mainly eliminated upon HF treatment, leaving behind small percent of V{sub}p in the core of the nanoparticle. We also find the electron-hole exchange interaction from circular polarized ODMR measurements. The TR-ODMR measurement further clarifies the spin dynamics and characteristic of the magnetic sites. Fitting these measurements to the simulated response of the PL intensity to the square wave modulated microwave power revealed that the spin relaxation time and radiative lifetime of electron-hole pair in the nanoparticles are in the microseconds regime.
机译:小胶体INP纳米粒子的载体处于强量子监禁状态。 InP纳米颗粒的低温光致发光光谱由高能量的激动发光和在较低能量下的非激发器缺陷发射带构成。纳米颗粒的HF蚀刻降低了缺陷排放并增强了激子过程。在这项工作中,我们在连续波和时间分辨模式(TR-ODMR)中应用光学检测的磁共振光谱(ODMR),以研究INP纳米颗粒中的缺陷发光。结果表明,缺陷发光源自弱耦合的电子 - 空穴对,其中电子通过磷空位捕获在表面上,V {Sub} P,并且孔位于价带。另外,结果表明,不蚀刻的样品在表面的V {Sub} P主导。这些主要是在HF处理时消除的,纳米颗粒的核心留下v {亚} p的小百分比。我们还发现圆极化ODMR测量的电子空穴交换相互作用。 TR-ODMR测量进一步阐明了磁力点的自旋动力学和特性。将这些测量拟合到平方波调制微波功率的PL强度的模拟响应显示,纳米颗粒中的旋转弛豫时间和电子 - 孔对的辐射寿命在微秒内。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号