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Extraordinary lithium ion storage capability achieved by SnO2 nanocrystals with exposed {221} facets

机译:非凡的锂离子的存储功能通过SnO2纳米晶体暴露与{221}方面

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摘要

Rational design of SnO2 nanomaterials with superior architectures and excellent electrochemical properties is highly desirable for lithium ion storage. Here, several SnO2 nanoparticles with different exposed crystal planes, such as {101}, {110} and {221} facets, are developed and further embedded into graphene/carbon nanotube (G/CNT) networks, achieving highly conductive carbon/SnO2 films (C/SnO2) with homogeneous dispersion of SnO2 nanoparticles. Three-dimensional (3D) G/CNT networks with highly porous structures and electronic contacts with imbedded SnO2 nanoparticles provide excellent pathways for transfer of electrons and ions and further buffer structural changes of SnO2 nanocrystals during lithium-ion insertion/extraction processes. Close contact between G/CNT matrix and embedded SnO2 nanoparticles ensures that all high-energy {221} facets of SnO2 are exploited during rapid electrochemical reactions. The high electrical conductivity of G/CNT networks can further prevent pulverization of nanostructured SnO2. As a result, C/SnO2 film with 90 content of octahedral SnO2 nanocrystals (C/SnO2-O (90)) exhibits superior reversible specific capacity of 1008 mA h g(-1) at 0.1 A g(-1), excellent rate capability, low internal resistance and long-term cycling stability for 1000 cycles. These results further confirm that SnO2 nanocrystals with high-energy {221} facets can provide numerous active sites for lithium ion storage than other SnO2 nanomaterials.
机译:设计合理的SnO2纳米材料高级体系结构和优秀的电化学性能是非常可取的对锂离子存储。纳米粒子具有不同晶体暴露飞机,如{101}、{110}和{221}面,开发和进一步嵌入石墨烯/碳纳米管(G / CNT)网络,实现高导电碳/ SnO2薄膜(C / SnO2) SnO2的均匀分散纳米粒子。网络与高度多孔结构电子与嵌入SnO2接触纳米粒子提供了良好的途径电子和离子迁移和进一步的缓冲SnO2纳米晶体的结构变化锂离子嵌入/提取过程。接触和嵌入式SnO2 G /问矩阵纳米粒子确保所有高能{221}在快速方面SnO2的剥削电化学反应。电导率的G /问网络可以进一步防止纳米SnO2的粉碎。因此,C / SnO2薄膜的含量为90%八面体SnO2纳米晶体(C / SnO2-O (90%))展现优越的可逆的特定能力1008毫安h g(1)为0.1 g(1),优秀的速度能力,内部阻力和长期低1000年自行车稳定周期。进一步确认SnO2纳米晶体高能量的{221}面可以提供无数积极为锂离子存储比其他网站SnO2纳米材料。

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