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Green Strategy to Single Crystalline Anatase TiO2 Nanosheets with Dominant (001) Facets and Its Lithiation Study toward Sustainable Cobalt-Free Lithium Ion Full Battery
期刊文章

Green Strategy to Single Crystalline Anatase TiO2 Nanosheets with Dominant (001) Facets and Its Lithiation Study toward Sustainable Cobalt-Free Lithium Ion Full Battery

Hai Ming, Pushpendra Kumar, Wenjing Yang, Yu Fu, Jun Ming, Won-Jin Kwak, Lain-Jong Li, Yang-Kook SunJunwei Zheng
ACS Sustainable Chemistry and Engineering, 卷.3(12), 頁碼.3086-3095
12/2015

摘要

Anode Battery Cathode Hydrothermal Lithiation Titanium dioxide Chemistry (all) Environmental Chemistry Chemical Engineering (all) Renewable Energy Sustainability and the Environment
A green hydrothermal strategy starting from the Ti powders was developed to synthesis a new kind of well dispersed anatase TiO 2 nanosheets (TNSTs) with dominant (001) facets, successfully avoiding using the HF by choosing the safe substitutes of LiF powder. In contrast to traditional approaches targeting TiO 2 with dominant crystal facets, the strategy presented herein is more convenient, environment friendly and available for industrial production. As a unique structured anode applied in lithium ion battery, the TNSTs could exhibit an extremely high capacity around 215 mAh g -1 at the current density of 100 mA g -1 and preserved capacity over 140 mAh g -1 enduring 200 cycles at 400 mA g -1 . As a further step toward commercialization, a model of lithiating TiO 2 was built for the first time and analyzed by the electrochemical characterizations, and full batteries employing lithiated TNSTs as carbon-free anode versus spinel LiNi x Mn 2-x O 4 (x = 0, 0.5) cathode were configured. The full batteries of TNSTs/LiMn 2 O 4 and TNSTs/LiNi 0.5 Mn 1.5 O 4 have the sustainable advantage of cost-effective and cobalt-free characteristics, and particularly they demonstrated high energy densities of 497 and 580 Wh kg anode -1 (i.e., 276 and 341 Wh kg cathode -1 ) with stable capacity retentions of 95% and 99% respectively over 100 cycles. Besides the intriguing performance in batteries, the versatile synthetic strategy and unique characteristics of TNSTs may promise other attracting applications in the fields of photoreaction, electro-catalyst, electrochemistry, interfacial adsorption photovoltaic devices etc.

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