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Atomic architectonics, nanoarchitectonics and microarchitectonics for strategies to make junk materials work as precious catalysts

机译:用于使垃圾材料成为珍贵催化剂的策略的原子建筑学,纳米建筑学和微建筑学

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In order to solve problems of limited resources and their unbalanced distributions, considerable efforts to replace precious elements with naturally abundant elements have been made using various approaches. In this highlight article, we briefly introduce several recent examples of the use of earth-abundant elements for producing environmentally friendly catalysts with performance efficiencies comparable to those made from precious metals on the basis of three types of architectonics: atomic architectonics, nanoarchitectonics, and microarchitectonics. Atomic architectonics has been applied to make highly efficient catalysts of the activation of molecular hydrogen, NO oxidation, and photo-driven water splitting with inexpensive elements through well-considered combinations and compositions of these elements. Applying nanoarchitectonics to control lattice features and produce hierarchical arrangements of "junk" materials such as CuO have made these materials catalyze the consumption of NO better than Pt catalysts and as well as Rh catalysts. Larger-scale control of morphology by applying microarchitectonics has been used to effectively avoid the agglomeration of catalyst particles and hence suppress the degradation of these catalysts as well as to minimize the use of precious-element catalysts.
机译:为了解决资源有限及其分布不平衡的问题,已经进行了各种努力以各种方式用自然丰富的元素代替珍贵元素。在这篇重点文章中,我们简要介绍几个最近的例子,这些例子中使用了地球上丰富的元素来生产环保催化剂,其在三种建筑学基础上的性能效率可与由贵金属制成的催化剂相媲美:原子建筑学,纳米建筑学和微建筑学。通过充分考虑这些元素的组合和组成,原子建筑学已被用于制造高效催化剂,以廉价的元素活化分子氢,NO氧化和光驱水分解。运用纳米建筑学来控制晶格特征并产生诸如CuO之类的“垃圾”材料的分层排列,使这些材料比Pt催化剂和Rh催化剂催化的NO消耗更好。通过应用微体系结构进行大规模的形态控制已被用于有效地避免催化剂颗粒的团聚并因此抑制了这些催化剂的降解以及最小化了贵金属催化剂的使用。

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