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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Defect engineering in ZnO nanocones for visible photoconductivity and nonlinear absorption
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Defect engineering in ZnO nanocones for visible photoconductivity and nonlinear absorption

机译:ZnO纳米锥中的缺陷工程用于可见光导率和非线性吸收

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摘要

Nanostructured ZnO is a promising material for optoelectronic and nonlinear optical applications because of the flexibility of band gap engineering by means of various defect states present in it. Employing the time-correlated single photon counting photoluminescence technique, the correlation between defect levels and optoelectronic and nonlinear optical properties of ZnO is explored in this work. By a facile solution method, ZnO nanocones with a dominating preferential orientation along energetically less favorable, oxygen terminated (1011) facets were synthesized using a passivating capping agent. Photoluminescence spectra demonstrate that the as-grown samples have both oxygen and zinc vacancies, and after calcination in air oxygen vacancies vanish, but zinc vacancies are enhanced. Photoconductivity of the samples reduces significantly upon calcination, confirming the reduction in oxygen vacancies. However, the samples exhibit a significant enhancement in the nonlinear optical absorption coefficient upon calcination, indicating that the effective two-photon absorption causing the nonlinear optical behaviour originates from zinc vacancies. These results illustrate the vast possibilities of band gap engineering in intrinsic ZnO for future optoelectronic applications.
机译:纳米结构的ZnO是一种有前景的材料,可用于光电子和非线性光学应用,这是因为带隙工程通过存在于其中的各种缺陷状态而具有灵活性。利用时间相关的单光子计数光致发光技术,研究了缺陷水平与ZnO的光电和非线性光学性质之间的关系。通过一种简便的溶液方法,使用钝化封端剂合成了沿能量上不太有利的,具有主导优先取向的ZnO纳米锥,其氧封端的(1011)刻面。光致发光光谱表明,所生长的样品具有氧和锌空位,并且在空气中煅烧后氧空位消失,但是锌空位增加。煅烧后样品的光电导率显着降低,证实了氧空位的降低。但是,样品在煅烧后表现出明显的非线性光学吸收系数增强,表明引起非线性光学行为的有效双光子吸收源于锌空位。这些结果说明了用于未来光电应用的本征ZnO中带隙工程的巨大可能性。

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