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具有增强的CO传感和光催化性能的分级介孔In2O3:通过自组装耦合原位固-固转变形成的不同形貌的In(OH)3

Hierarchical mesoporous In2O3 with enhanced CO sensing and photocatalytic performance: distinct morphologies of In(OH)3 via self assembly coupled in situ solid-solid transformation.

作者信息

Shanmugasundaram Arunkumar, Basak Pratyay, Manorama Sunkara V, Krishna Binoy, Sanyadanam Srinath

机构信息

†Nanomaterials Laboratory, Inorganic and Physical Chemistry Division, CSIR-Indian Institute of Chemical Technology, Hyderabad-500007, Andhra Pradesh, India.

‡School of Physics, University of Hyderabad, Hyderabad-500046, Andhra Pradesh, India.

出版信息

ACS Appl Mater Interfaces. 2015 Apr 15;7(14):7679-89. doi: 10.1021/acsami.5b00584. Epub 2015 Apr 1.

Abstract

The present investigation details our interesting findings and insights into the evolution of exotic hierarchical superstructures of In(OH)3 under solvothermal conditions. Controlled variation of reaction parameters such as, reactant concentration, solvent system, crystal structure modifiers, water content along with temperature and time, yielded remarkable architectures. Diverse morphologies achieved for the first time includes (i) raspberry-like hollow spheres, (ii) nanosheet-assembled spheres, (iii) nanoparticle-assembled spheres, (iv) nanocube-assembled hollow spheres, (v) yolk-like spheres, (vi) solid spheres, (vii) nanosheets/flakes, and (viii) ultrafine nanosheets. A plausible mechanism is proposed based on the evidence gathered from a comprehensive analysis aided by electron microscopy and X-ray diffraction studies. Key stages of morphological evolution could be discerned and rationally correlated with nucleation, growth, oriented attachment, and Ostwald ripening mediated by dissolution-redeposition mechanism coupled with solid evacuation. Remarkably phase-pure bcc-In2O3 with retention of precursor morphology could be realized postcalcination at 400 °C, which underlines the advantage of this strategy. Two typical hierarchical structures (raspberry-like hollow spheres and nanoparticles assembled spheres) were investigated for their gas sensing and photocatalytic performances to highlight the advantages offered by nanostructuring. An impressive sensor response, Smax ≈ 7340 and 4055, respectively for the two structures along with appreciably fast response/recovery times over a wide concentration range and as low as 1 ppm exhibits the superior sensitivity toward carbon monoxide (CO). When compared to commercial In2O3, estimated rate constant indicates ∼3-4 times enhancement in photocatalytic activity of the substrates toward Rhodamine-B.

摘要

本研究详细阐述了我们在溶剂热条件下对In(OH)₃奇异分级超结构演变的有趣发现和见解。通过控制反应参数的变化,如反应物浓度、溶剂体系、晶体结构改性剂、含水量以及温度和时间,得到了显著的结构。首次实现的多种形态包括:(i) 覆盆子状空心球,(ii) 纳米片组装球,(iii) 纳米颗粒组装球,(iv) 纳米立方体组装空心球,(v) 蛋黄状球,(vi) 实心球,(vii) 纳米片/薄片,以及(viii) 超细纳米片。基于电子显微镜和X射线衍射研究的综合分析所收集的证据,提出了一种合理的机制。形态演变的关键阶段可以被识别,并与由溶解-再沉积机制以及固体排空介导的成核、生长、定向附着和奥斯特瓦尔德熟化合理关联。在400℃煅烧后,可以实现具有前驱体形态保留的显著纯相体心立方In₂O₃,这突出了该策略的优势。研究了两种典型的分级结构(覆盆子状空心球和纳米颗粒组装球)的气敏和光催化性能,以突出纳米结构化所提供的优势。对于这两种结构,分别有令人印象深刻的传感器响应,Smax≈7340和4055,并且在宽浓度范围内具有相当快的响应/恢复时间,低至1 ppm时对一氧化碳(CO)表现出卓越的灵敏度。与商用In₂O₃相比,估计的速率常数表明底物对罗丹明-B的光催化活性提高了约3-4倍。

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