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Dive into the research topics where Guofeng Xia is active.

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Featured researches published by Guofeng Xia.


ACS Applied Materials & Interfaces | 2016

Soft-Templated Self-Assembly of Mesoporous Anatase TiO2/Carbon Composite Nanospheres for High-Performance Lithium Ion Batteries

Ruofei Wu; Shuiyun Shen; Guofeng Xia; Fengjuan Zhu; Christian M. Lastoskie; Junliang Zhang

Mesoporous anatase TiO2/carbon composite nanospheres (designated as meso-ATCCNs) were successfully synthesized via a facile soft-templated self-assembly followed by thermal treatment. Structural and morphological analyses reveal that the as-synthesized meso-ATCCNs are composed of primary TiO2 nanoparticles (∼5 nm), combined with in situ deposited carbon either on the surface or between the primary TiO2 nanoparticles. When cycled in an extended voltage window from 0.01 to 3.0 V, meso-ATCCNs exhibit excellent rate capabilities (413.7, 289.7, and 206.8 mAh g(-1) at 200, 1000, and 3000 mA g(-1), respectively) as well as stable cyclability (90% capacity retention over 500 cycles at 1000 mA g(-1)). Compared with both mesoporous TiO2 nanospheres and bulk TiO2, the superior electrochemical performance of the meso-ATCCNs electrode could be ascribed to a synergetic effect induced by hierarchical structure that includes uniform TiO2 nanoparticles, the presence of hydrothermal carbon derived from phenolic resols, a high surface area, and open mesoporosity.


RSC Advances | 2014

Soft-templated LiFePO4/mesoporous carbon nanosheets (LFP/meso-CNSs) nanocomposite as the cathode material of lithium ion batteries

Ruofei Wu; Guofeng Xia; Shuiyun Shen; Fengjuan Zhu; Fengjing Jiang; Junliang Zhang

A novel and facile in situ soft-templated method is proposed for synthesizing a LFP/mesoporous carbon nanosheets (LFP/meso-CNSs) nanocomposite, which involves solvent evaporation induced self-assembly of triblock copolymers, with resol and inorganic salts as co-precursors of CNSs and LFP, followed by a heat treatment. The LFP/meso-CNSs nanocomposite displays an excellent high-rate capability (122.1 mA h g−1 at 5 C and 102.1 mA h g−1 at 10 C) and stable cycling property as the cathode material of lithium ion batteries, benefitting from its high electronic conductivity, open mesoporosity, and the nano-size of its active material.


Nano Research | 2018

Facile preparation of unique three-dimensional (3D) α-MnO2/MWCNTs macroporous hybrid as the high-performance cathode of rechargeable Li-O2 batteries

Shuiyun Shen; Aiming Wu; Guofeng Xia; Guanghua Wei; Xiaohui Yan; Yao Zhang; Fengjuan Zhu; Jiewei Yin; Junliang Zhang

Undoubtedly, there remains an urgent prerequisite to achieve significant advances in both the specific capacity and cyclability of Li-O2 batteries for their practical application. In this work, a series of unique three-dimensional (3D) α-MnO2/MWCNTs hybrids are successfully prepared using a facile lyophilization method and investigated as the cathode of Li-O2 batteries. Thereinto, cross-linked α-MnO2/MWCNTs nanocomposites are first synthesized via a modified chemical route. Results demonstrate that MnO2 nanorods in the nanocomposites have a length of 100–400 nm and a diameter ranging from 5 to 10 nm, and more attractively, the as-lyophilized 3D MnO2/MWCNTs hybrids is uniquely constructed with large amounts of interconnected macroporous channels. The Li-O2 battery with the 3D macroporous hybrid cathode that has a mass percentage of 50% of α-MnO2 delivers a high discharge specific capacity of 8,643 mAh·g−1 at 100 mA·g−1, and maintains over 90 cycles before the discharge voltage drops to 2.0 V under a controlled specific capacity of 1,000 mAh·g−1. It is observed that when being recharged, the product of toroidal Li2O2 particles disappears and electrode surfaces are well recovered, thus confirming a good reversibility. The excellent performance of Li-O2 battery with the 3D α-MnO2/MWCNTs macroporous hybrid cathode is ascribed to a synergistic combination between the unique macroporous architecture and highly efficient bi-functional α-MnO2/MWCNTs electrocatalyst.


Catalysis Science & Technology | 2018

An exploration of the use of Au submonolayer decorated Pd7Ir nanoparticles as a highly active electrocatalyst for the ethanol oxidation reaction in alkaline media

Shuiyun Shen; Yangge Guo; Guanghua Wei; Liuxuan Luo; Fan Li; Lin Li; Guofeng Xia; Junliang Zhang

Although very promising in its stabilizing effect, an inevitable loss on activity mostly exists when combining gold (Au) with other noble metals. Contrary to this knowledge, in this research an unexpected promotion of the Au submonolayer on palladium-iridium/carbon (Pd7Ir/C) nanoparticles towards the ethanol oxidation reaction in alkaline media was explored and the corresponding mechanism was clarified.


Electrochimica Acta | 2015

In-situ growth of LiFePO4 nanocrystals on interconnected carbon nanotubes/mesoporous carbon nanosheets for high-performance lithium ion batteries

Ruofei Wu; Guofeng Xia; Shuiyun Shen; Fengjuan Zhu; Fengjing Jiang; Junliang Zhang


Applied Energy | 2017

Experimental and numerical analysis of a three-dimensional flow field for PEMFCs

Wenkai Li; Qinglei Zhang; Chao Wang; Xiaohui Yan; Shuiyun Shen; Guofeng Xia; Fengjuan Zhu; Junliang Zhang


Electrochemistry Communications | 2015

Effect of oxygen-containing functional groups of carbon materials on the performance of Li–O2 batteries

Guofeng Xia; Shuiyun Shen; Fengjuan Zhu; Jingying Xie; Yongfang Hu; Kai Zhu; Junliang Zhang


Nanoscale | 2018

CxNy particles@N-doped porous graphene: a novel cathode catalyst with a remarkable cyclability for Li–O2 batteries

Aiming Wu; Shuiyun Shen; Xiaohui Yan; Guofeng Xia; Yao Zhang; Fengjuan Zhu; Junliang Zhang


PRiME 2016/230th ECS Meeting (October 2-7, 2016) | 2016

A Porous Air Electrode for Li-O2 Batteries Based on a Green Method

Guofeng Xia; Shuiyun Shen; Fengjuan Zhu; Aiming Wu; Ruofei Wu; Junliang Zhang


Acta Physico-chimica Sinica | 2016

Recent Progress in Non-Aqueous Lithium-Air Batteries

Ai-Ming Wu; Guofeng Xia; Shuiyun Shen; Jiewei Yin; Ya Mao; Qingyou Bai; Jingying Xie; Jun-Liang Zhang

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Shuiyun Shen

Shanghai Jiao Tong University

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Junliang Zhang

Shanghai Jiao Tong University

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Fengjuan Zhu

Shanghai Jiao Tong University

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Ruofei Wu

Shanghai Jiao Tong University

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Fengjing Jiang

Shanghai Jiao Tong University

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Aiming Wu

Shanghai Jiao Tong University

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Xiaohui Yan

Shanghai Jiao Tong University

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Chao Wang

Shanghai Jiao Tong University

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Guanghua Wei

Shanghai Jiao Tong University

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Jiewei Yin

Shanghai Jiao Tong University

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