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A chloroplast structured photocatalyst enabled by microwave synthesis

机译:通过微波合成实现的叶绿体结构光催化剂

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摘要

Photosynthesis occurs through the synergistic effects of the non-ncontinuously distributed components in the chloroplast. Inspired by nature, we mimic chloroplast and develop a generic approach to synthesize non-continuously distributed semiconductors threaded by carbon nanotubes. In the synthesis, carbon nanotubes serve as microwave antennas to produce local super-hot dots on the surface, which might induce and accelerate various organic/inorganic semiconductors assembly. With the unique nanoscale designed bionic architecture, a chloroplast structured photocatalyst with 3−dimentional dual electron transfer pathways facilitate enhanced photocatalytic performance. The as-synthesized carbon nanotubes-titanium oxide achieves a record-breaking efficiency of 86% for nitric oxide treatment under ultraviolet light irradiation. As a general strategy, a wide variety of carbon nanotubes threaded chloroplast structured nanomaterials can be synthesized and these nanomaterials could find applications in energy chemistry, environmental science and human health.
机译:光合作用是通过叶绿体中非连续分布的成分的协同作用而发生的。受自然界的启发,我们模仿叶绿体并开发了一种通用方法来合成由碳纳米管连接的非连续分布的半导体。在合成过程中,碳纳米管充当微波天线,以在表面上产生局部超热点,这可能诱发并加速各种有机/无机半导体组装。通过独特的纳米级仿生结构,具有3维双电子转移途径的叶绿体结构光催化剂可增强光催化性能。如此合成的碳纳米管-二氧化钛在紫外线照射下的一氧化氮处理达到了创纪录的86%的破纪录效率。作为一般策略,可以合成多种具有线状叶绿体结构的碳纳米管纳米材料,这些纳米材料可以在能源化学,环境科学和人体健康中找到应用。

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