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首页> 外文期刊>Progress in Solid State Chemistry >A comprehensive review on synthesis of pristine and doped inorganic room temperature stable mayenite electride, [Ca24Al28O64](4+)(e(-))(4) and its applications as a catalyst
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A comprehensive review on synthesis of pristine and doped inorganic room temperature stable mayenite electride, [Ca24Al28O64](4+)(e(-))(4) and its applications as a catalyst

机译:对原始和掺杂无机室温稳定型矿石电热的综合综述,[Ca24Al28O64](4 +)(E( - ))(4)及其作为催化剂的应用

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摘要

Advances in the device fabrication in all emerging fields with promising features and improved control on material properties provide a strong motivation for researchers to reveal, recognize the potential of existing materials and to develop new ones with excellent properties by scheme a low cost syntheses method. Since the discovery of abundant, inorganic mayenite electride, [Ca24Al28O64](4+)(e(-))(4) (thereafter, C12A7:e(-)) (2003), it has attracted much attention due to its unique and unconventional properties such as high electron concentration (similar to 2.3-7 x 10(21) cm(-3)) and low work function (WF similar to 2.4 eV), which are comparable value with alkali metals, but is chemically inert in an ambient atmosphere. Furthermore, a severe reducing environment enables us to substitute electrons almost completely for anions in the cages, forming a stable inorganic electride, C12A7:e(-). Finally, the formation of these active anions in this material has potential application as a catalyst support in the NH3 synthesis/decomposition, CO2 dissociation and specially recently introduced by our group as electrocatalyst in fuel cell. To further boost these applications the important thing was to synthesize high specific surface area, nanosized C12A7:e(-) powder with enhanced conductivity, that can be done by cation doping. Over the last decade, experimental studies supported by theoretical calculations have demonstrated that cation elements doping can further boost its electrical properties. Therefore, our group studied doping with more suitable cations, Si, Sn, Ga, V etc in C12A7:e(-) and we will explain each in detail. In this review we are going to describe progress in the synthesis of C12A7:e(-) especially in nanosized powder material, and about most important recent challenges towards the suitable cations doping in C12A7:e(-) electride and finally its industrial important applications as a catalyst.
机译:在所有新兴领域的设备制造中的进步,具有有希望的特征和改进的材料特性控制,为研究人员提供了强大的动机,揭示了现有材料的潜力,并通过方案开发具有优异性能的新型性能。由于发现丰富的无机型腐蚀电热,[Ca24Al28O64](4 +)(E( - ))(4)(此后,C12A7:E( - ))(2003),由于其独特而引起了很多关注非常规特性,如高电子浓度(类似于2.3-7×10(21)厘米(-3)厘米(-3))和低功函数(类似于2.4eV),其与碱金属相当,但在化学上惰性环境氛围。此外,严重的还原环境使我们能够将电子替换为笼中的阴离子,形成稳定的无机电极,C12A7:E( - )。最后,在该材料中形成这些活性阴离子在NH3合成/分解中具有潜在的应用,作为催化剂载体,CO 2解离,并通过我们的组作为燃料电池中的电催化剂特别引入。为了进一步提升这些应用,重要的是合成具有增强的导电性的高比表面积,纳米化C12A7:E( - )粉末,可以通过阳离子掺杂来完成。在过去十年中,理论计算支持的实验研究表明,阳离子元素掺杂可以进一步提高其电性能。因此,我们的团队研究了C12A7:E( - )中更合适的阳离子,Si,Sn,Ga,V等,我们将详细解释。在本次审查中,我们将描述C12A7的合成中的进展:E( - ),特别是纳米粉末材料,以及迄今为止在C12A7中掺杂的合适阳离子的最重要挑战,最终其工业的重要应用作为催化剂。

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