Mu Xiao
University of Queensland
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Publication
Featured researches published by Mu Xiao.
Chemistry: A European Journal | 2018
Xia Huang; Bin Luo; Ruth Knibbe; Han Hu; Miaoqiang Lyu; Mu Xiao; Dan Sun; Songcan Wang; Lianzhou Wang
To fulfil the potential of Li-S batteries (LSBs) with high energy density and low cost, multiple challenges need to be addressed simultaneously. Most research in LSBs has been focused on the sulfur cathode design, although the performance is also known to be sensitive to other parameters such as binder, current collector, separator, lithium anode, and electrolyte. Here, an integrated LSB system based on the understanding of the different roles of binder, current collector, and separator is developed. By using the cross-linked carboxymethyl cellulose-citric acid (CMC-CA) binder, Toray carbon paper current collector, and reduced graphene oxide (rGO) coated separator, LSBs achieve a high capacity of 960 mAh g-1 after 200 cycles (2.5 mg cm-2 ) and 930 mAh g-1 after 50 cycles (5 mg cm-2 ) at 0.1 C. Moreover, the failure mechanism at a high sulfur loading with characteristics of fast capacity decay and infinite charging is discussed. This work highlights the synergistic effect of different components and the challenges towards more reliable LSBs with high sulfur loading.
Advanced Materials | 2018
Mu Xiao; Zhiliang Wang; Miaoqiang Lyu; Bin Luo; Songcan Wang; Gang Liu; Hui-Ming Cheng; Lianzhou Wang
Photocatalysis for solar-driven reactions promises a bright future in addressing energy and environmental challenges. The performance of photocatalysis is highly dependent on the design of photocatalysts, which can be rationally tailored to achieve efficient light harvesting, promoted charge separation and transport, and accelerated surface reactions. Due to its unique feature, semiconductors with hollow structure offer many advantages in photocatalyst design including improved light scattering and harvesting, reduced distance for charge migration and directed charge separation, and abundant surface reactive sites of the shells. Herein, the relationship between hollow nanostructures and their photocatalytic performance are discussed. The advantages of hollow nanostructures are summarized as: 1) enhancement in the light harvesting through light scattering and slow photon effects; 2) suppression of charge recombination by reducing charge transfer distance and directing separation of charge carriers; and 3) acceleration of the surface reactions by increasing accessible surface areas for separating the redox reactions spatially. Toward the end of the review, some insights into the key challenges and perspectives of hollow structured photocatalysts are also discussed, with a good hope to shed light on further promoting the rapid progress of this dynamic research field.
Engineering | 2017
Mu Xiao; Songcan Wang; Supphasin Thaweesak; Bin Luo; Lianzhou Wang
Abstract Photocatalytic water splitting, which directly converts solar energy into hydrogen, is one of the most desirable solar-energy-conversion approaches. The ultimate target of photocatalysis is to explore efficient and stable photocatalysts for solar water splitting. Tantalum (oxy)nitride-based materials are a class of the most promising photocatalysts for solar water splitting because of their narrow bandgaps and sufficient band energy potentials for water splitting. Tantalum (oxy)nitride-based photocatalysts have experienced intensive exploration, and encouraging progress has been achieved over the past years. However, the solar-to-hydrogen (STH) conversion efficiency is still very far from its theoretical value. The question of how to better design these materials in order to further improve their water-splitting capability is of interest and importance. This review summarizes the development of tantalum (oxy)nitride-based photocatalysts for solar water spitting. Special interest is paid to important strategies for improving photocatalytic water-splitting efficiency. This paper also proposes future trends to explore in the research area of tantalum-based narrow bandgap photocatalysts for solar water splitting.
Journal of Materials Science & Technology | 2017
Songcan Wang; Jung-Ho Yun; Bin Luo; Teera Butburee; Piangjai Peerakiatkhajohn; Supphasin Thaweesak; Mu Xiao; Lianzhou Wang
Dalton Transactions | 2017
Supphasin Thaweesak; Songcan Wang; Miaoqiang Lyu; Mu Xiao; Piangjai Peerakiatkhajohn; Lianzhou Wang
Advanced Energy Materials | 2018
Mu Xiao; Bin Luo; Miaoqiang Lyu; Songcan Wang; Lianzhou Wang
Journal of Materials Chemistry | 2018
Bin Luo; Yuxiang Hu; Xiaobo Zhu; Tengfei Qiu; Linjie Zhi; Mu Xiao; Haijiao Zhang; Mingchu Zou; Anyuan Cao; Lianzhou Wang
Progress in Natural Science: Materials International | 2018
Mu Xiao; Bin Luo; Supphasin Thaweesak; Lianzhou Wang
Advanced Functional Materials | 2018
Songcan Wang; Tianwei He; Jung-Ho Yun; Yuxiang Hu; Mu Xiao; Aijun Du; Lianzhou Wang
2D Materials | 2017
Linjie Gao; Yaguang Li; Mu Xiao; Shufang Wang; Guangsheng Fu; Lianzhou Wang