Qicheng Zhang
Hong Kong University of Science and Technology
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Publication
Featured researches published by Qicheng Zhang.
Nano Letters | 2016
Minghao Zhuang; Xuewu Ou; Yubing Dou; Lulu Zhang; Qicheng Zhang; Ruizhe Wu; Yao Ding; Minhua Shao; Zhengtang Luo
We developed a method to engineer well-distributed dicobalt phosphide (Co2P) nanoparticles encapsulated in N,P-doped graphene (Co2P@NPG) as electrocatalysts for hydrogen evolution reaction (HER). We fabricated such nanostructure by the absorption of initiator and functional monomers, including acrylamide and phytic acid on graphene oxides, followed by UV-initiated polymerization, then by adsorption of cobalt ions and finally calcination to form N,P-doped graphene structures. Our experimental results show significantly enhanced performance for such engineered nanostructures due to the synergistic effect from nanoparticles encapsulation and nitrogen and phosphorus doping on graphene structures. The obtained Co2P@NPG modified cathode exhibits small overpotentials of only -45 mV at 1 mA cm(-2), respectively, with a low Tafel slope of 58 mV dec(-1) and high exchange current density of 0.21 mA cm(-2) in 0.5 M H2SO4. In addition, encapsulation by N,P-doped graphene effectively prevent nanoparticle from corrosion, exhibiting nearly unfading catalytic performance after 30 h testing. This versatile method also opens a door for unprecedented design and fabrication of novel low-cost metal phosphide electrocatalysts encapsulated by graphene.
ACS Nano | 2017
Qicheng Zhang; Carl H. Naylor; Zhaoli Gao; Ruizhe Wu; Irfan Haider Abidi; Meng-Qiang Zhao; Yao Ding; Aldrine Abenoja Cagang; Minghao Zhuang; Xuewu Ou; Zhengtang Luo
The 2D geometry nature and low dielectric constant in transition-metal dichalcogenides lead to easily formed strongly bound excitons and trions. Here, we studied the photoluminescence of van der Waals heterostructures of monolayer MoS2 and graphene at room temperature and observed two photoluminescence peaks that are associated with trion emission. Further study of different heterostructure configurations confirms that these two peaks are intrinsic to MoS2 and originate from a bound state and Fermi level, respectively, of which both accept recoiled electrons from trion recombination. We demonstrate that the recoil effect allows us to electrically control the photon energy of trion emission by adjusting the gate voltage. In addition, significant thermal smearing at room temperature results in capture of recoil electrons by bound states, creating photoemission peak at low doping level whose photon energy is less sensitive to gate voltage tuning. This discovery reveals an unexpected role of bound states for photoemission, where binding of recoil electrons becomes important.
Nano Letters | 2018
Zhaoli Gao; Han Xia; Jonathan Zauberman; Maurizio Tomaiuolo; Jinglei Ping; Qicheng Zhang; Pedro Ducos; Huacheng Ye; Sheng Wang; Xinping Yang; Fahmida Lubna; Zhengtang Luo; Li Ren; A. T. Johnson
All-electronic DNA biosensors based on graphene field-effect transistors (GFETs) offer the prospect of simple and cost-effective diagnostics. For GFET sensors based on complementary probe DNA, the sensitivity is limited by the binding affinity of the target oligonucleotide, in the nM range for 20 mer targets. We report a ∼20 000× improvement in sensitivity through the use of engineered hairpin probe DNA that allows for target recycling and hybridization chain reaction. This enables detection of 21 mer target DNA at sub-fM concentration and provides superior specificity against single-base mismatched oligomers. The work is based on a scalable fabrication process for biosensor arrays that is suitable for multiplexed detection. This approach overcomes the binding-affinity-dependent sensitivity of nucleic acid biosensors and offers a pathway toward multiplexed and label-free nucleic acid testing with high accuracy and selectivity.
Carbon | 2016
Ruizhe Wu; Lin Gan; Xuewu Ou; Qicheng Zhang; Zhengtang Luo
Chemistry of Materials | 2014
Lin Gan; Xuewu Ou; Qicheng Zhang; Ruizhe Wu; Zhengtang Luo
Nanoscale | 2015
Lin Gan; Haijing Zhang; Ruizhe Wu; Qicheng Zhang; Xuewu Ou; Yao Ding; Ping Sheng; Zhengtang Luo
Chemistry of Materials | 2016
Yao Ding; Qing Peng; Lin Gan; Ruizhe Wu; Xuewu Ou; Qicheng Zhang; Zhengtang Luo
ACS Nano | 2017
Carl H. Naylor; William M. Parkin; Zhaoli Gao; Joel Berry; Songsong Zhou; Qicheng Zhang; John Brandon McClimon; Liang Z. Tan; Christopher E. Kehayias; Meng-Qiang Zhao; Ram Surya Gona; Robert W. Carpick; Andrew M. Rappe; David J. Srolovitz; Marija Drndic; A. T. Johnson
Nano Energy | 2018
Yao Ding; Nan Zhou; Lin Gan; Xingxu Yan; Ruizhe Wu; Irfan Haider Abidi; Aashir Waleed; Jie Pan; Xuewu Ou; Qicheng Zhang; Minghao Zhuang; Peng Wang; Xiaoqing Pan; Zhiyong Fan; Tianyou Zhai; Zhengtang Luo
Advanced Functional Materials | 2017
Irfan Haider Abidi; Yuanyue Liu; Jie Pan; Abhishek Tyagi; Minghao Zhuang; Qicheng Zhang; Aldrine Abenoja Cagang; Lutao Weng; Ping Sheng; William A. Goddard; Zhengtang Luo