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新型钙钛矿催化剂用于一氧化碳的低温催化转化

Low temperature catalytic conversion of carbon monoxide by the application of novel perovskite catalysts.

作者信息

Dey Subhashish, Mehta Niraj Singh

机构信息

Environmental Engineering Department, Rajiv Gandhi Proudyogiki Vishwavidyalaya, Bhopal, India.

Electronics and Communication Engineering, Krishna Institute of Engineering and Technology, Ghaziabad, Uttar Pradesh, India.

出版信息

Sci One Health. 2022 Sep 24;1:100002. doi: 10.1016/j.soh.2022.100002. eCollection 2022 Nov.

Abstract

Automobile exhaust contributes the largest sources of carbon monoxide (CO) into the environment. To control this CO pollution, the catalytic converters have been discovered. The catalytic converters have been invented for regulating the CO discharge. There are many types of catalysts have been investigated for CO emission control purposes. Inorganic perovskite-type oxides are fascinating nanomaterials for wide applications in catalysis, fuel cells, and electrochemical sensing. Perovskites prepared in the nanoscale have recently received more attention due to their catalytic nature when used as electrode modifiers. Perovskite catalysts show great potential for CO oxidation catalyst in a catalytic converter for their low cost, high thermal stability and tailoring flexibility. It is active for CO oxidation at a lower temperature. The catalytic activity of these oxides is higher than that of many transition metals compounds and even some precious metal oxides. They represents attractive physical and chemical characteristics such as electronic conductivity, electrically active structure, the oxide ions mobility through the crystal lattice, variations on the content of the oxygen, thermal and chemical stability, and supermagnetic, photocatalytic, thermoelectric and dielectric properties. The surface sites and lattice oxygen species present in perovskite catalysts play an important role in chemical transformations. The partial replacement of cations A and B by different elements, which changes the atomic distance, causes unit cell disturbances, stabilizes various oxidation states or added cationic or anionic vacancies inside the lattice. The novel things disturb the solid reactivity by varying the reaction mechanism on the catalyst surface. Thus, the better cations replacement may represent more activity. There are lots of papers available to CO oxidation over perovskite catalysts but no review paper available in the literature that is represented to CO oxidation.

摘要

汽车尾气是环境中一氧化碳(CO)的最大来源。为了控制这种CO污染,人们发现了催化转化器。催化转化器被发明用于调节CO排放。为了控制CO排放,人们研究了许多类型的催化剂。无机钙钛矿型氧化物是一类迷人的纳米材料,在催化、燃料电池和电化学传感等领域有广泛应用。由于其作为电极修饰剂时的催化性质,纳米级制备的钙钛矿最近受到了更多关注。钙钛矿催化剂因其低成本、高热稳定性和剪裁灵活性,在催化转化器中作为CO氧化催化剂显示出巨大潜力。它在较低温度下对CO氧化具有活性。这些氧化物的催化活性高于许多过渡金属化合物甚至一些贵金属氧化物。它们具有吸引人的物理和化学特性,如电子导电性、电活性结构、氧离子在晶格中的迁移率、氧含量的变化、热稳定性和化学稳定性,以及超磁性、光催化、热电和介电性能。钙钛矿催化剂中存在的表面位点和晶格氧物种在化学转化中起重要作用。用不同元素部分取代阳离子A和B,会改变原子间距,导致晶胞扰动,稳定各种氧化态或在晶格内引入阳离子或阴离子空位。这些新情况通过改变催化剂表面的反应机理来干扰固体反应性。因此,更好的阳离子取代可能意味着更高的活性。有很多关于钙钛矿催化剂上CO氧化的论文,但文献中没有关于CO氧化的综述文章。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d32c/11262276/880850c2d86b/ga1.jpg

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