Yining Zhang
Dalian Institute of Chemical Physics
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Publication
Featured researches published by Yining Zhang.
ACS Applied Materials & Interfaces | 2015
Wei Zhou; Hongzhang Zhang; Hongjiao Nie; Yiwen Ma; Yining Zhang; Huamin Zhang
Nonaqueous Li-O2 battery is recognized as one of the most promising energy storage devices for electric vehicles due to its super-high energy density. At present, carbon or catalyst-supporting carbon materials are widely used for cathode materials of Li-O2 battery. However, the unique electrode reaction and complex side reactions lead to numerous hurdles that have to be overcome. The pore blocking caused by the solid products and the byproducts generated from the side reactions severely limit the capacity performance and cycling stability. Thus, there is a great need to develop carbon materials with optimized pore structure and tunable surface chemistry to meet the special requirement of Li-O2 battery. Here, we propose a strategy of vacuum-promoted thermal expansion to fabricate one micron-sized graphene matrix with a hierarchical meso-/macroporous structure, combining with a following deoxygenation treatment to adjust the surface chemistry by reducing the amount of oxygen and selectively removing partial unstable groups. The as-made graphene demonstrates dramatically tailored pore characteristics and a well-tuned surface chemical environment. When applied in Li-O2 battery as cathode, it exhibits an outstanding capacity up to 19 800 mA h g(-1) and is capable of enduring over 50 cycles with a curtaining capacity of 1000 mA h g(-1) at a current density of 1000 mA g(-1). This will provide a novel pathway for the design of cathodes for Li-O2 battery.
RSC Advances | 2014
Hongjiao Nie; Yining Zhang; Jing Li; Wei Zhou; Qinzhi Lai; Tao Liu; Huamin Zhang
Meso–macro hierarchical porous carbon (HPC) is prepared and used as a cathode material in Li–O2 batteries. The O2 diffusivity has been largely improved due to the unblocked macropores. As a result, a better pore utilization and extremely high discharge capacity is achieved.
Electrochimica Acta | 2009
Jinbin Cheng; Huamin Zhang; Guobao Chen; Yining Zhang
Nanoscale | 2013
Jing Li; Huamin Zhang; Yining Zhang; Meiri Wang; Fengxiang Zhang; Hongjiao Nie
Journal of Power Sources | 2013
Yining Zhang; Huamin Zhang; Jing Li; Meiri Wang; Hongjiao Nie; Fengxiang Zhang
Nanoscale | 2013
Hongjiao Nie; Huamin Zhang; Yining Zhang; Tao Liu; Jing Li; Qinzhi Lai
Journal of Power Sources | 2014
Jing Li; Yining Zhang; Wei Zhou; Hongjiao Nie; Huamin Zhang
Chemical Communications | 2015
Wen Hu; Huamin Zhang; Yining Zhang; Meiri Wang; Chao Qu; Jianhong Yi
Electrochimica Acta | 2014
Hongjiao Nie; Yining Zhang; Wei Zhou; Jing Li; Baoshan Wu; Tao Liu; Huamin Zhang
Electrochimica Acta | 2014
Wei Zhou; Jing Li; Hongjiao Nie; Yining Zhang; Xiaoli Xi; Huamin Zhang