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通过物理气相传输在牺牲性氧化锌微四足体的三维网络上制备的气载硫化锌。

Aero-ZnS prepared by physical vapor transport on three-dimensional networks of sacrificial ZnO microtetrapods.

作者信息

Ursaki Veaceslav, Braniste Tudor, Zalamai Victor, Rusu Emil, Ciobanu Vladimir, Morari Vadim, Podgornii Daniel, Ricci Pier Carlo, Adelung Rainer, Tiginyanu Ion

机构信息

National Center for Materials Study and Testing, Technical University of Moldova, Chisinau, Republic of Moldova.

Academy of Sciences of Moldova, Chisinau, Republic of Moldova.

出版信息

Beilstein J Nanotechnol. 2024 May 2;15:490-499. doi: 10.3762/bjnano.15.44. eCollection 2024.

Abstract

Aeromaterials represent a class of increasingly attractive materials for various applications. Among them, aero-ZnS has been produced by hydride vapor phase epitaxy on sacrificial ZnO templates consisting of networks of microtetrapods and has been proposed for microfluidic applications. In this paper, a cost-effective technological approach is proposed for the fabrication of aero-ZnS by using physical vapor transport with SnS crystals and networks of ZnO microtetrapods as precursors. The morphology of the produced material is investigated by scanning electron microscopy (SEM), while its crystalline and optical qualities are assessed by X-ray diffraction (XRD) analysis and photoluminescence (PL) spectroscopy, respectively. We demonstrate possibilities for controlling the composition and the crystallographic phase content of the prepared aerogels by the duration of the technological procedure. A scheme of deep energy levels and electronic transitions in the ZnS skeleton of the aeromaterial was deduced from the PL analysis, suggesting that the produced aerogel is a potential candidate for photocatalytic and sensor applications.

摘要

气凝胶材料是一类在各种应用中越来越有吸引力的材料。其中,气凝胶硫化锌(aero-ZnS)已通过氢化物气相外延法在由微四足体网络组成的牺牲性氧化锌模板上制备出来,并已被提议用于微流体应用。本文提出了一种经济高效的技术方法,以硫化锡晶体和氧化锌微四足体网络为前驱体,通过物理气相传输来制备气凝胶硫化锌。通过扫描电子显微镜(SEM)研究了所制备材料的形貌,同时分别通过X射线衍射(XRD)分析和光致发光(PL)光谱评估了其晶体质量和光学性质。我们证明了通过工艺过程的持续时间来控制所制备气凝胶的组成和晶体相含量的可能性。从PL分析中推导出了气凝胶材料硫化锌骨架中的深能级和电子跃迁方案,这表明所制备的气凝胶是光催化和传感器应用的潜在候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b885/11070954/5488953cbe21/Beilstein_J_Nanotechnol-15-490-g002.jpg

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