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Featured researches published by Zhijuan Xu.


Nano Energy | 2015

18.5% efficient graphene/GaAs van der Waals heterostructure solar cell

Xiaoqiang Li; W.Q. Chen; Shengjiao Zhang; Zhiqian Wu; Peng Wang; Zhijuan Xu; Hongsheng Chen; Wen-Yan Yin; Huikai Zhong; Shisheng Lin

The honeycomb connection of carbon atoms by covalent bonds in a macroscopic two-dimensional scale leads to fascinating graphene and solar cell based on graphene/silicon Schottky diode has been widely studied. For solar cell applications, GaAs is superior to silicon as it has a direct band gap of 1.42 eV and its electron mobility is six times of that of silicon. However, graphene/GaAs solar cell has been rarely explored. Herein, we report graphene/GaAs solar cells with conversion efficiency (Eta) of 10.4% and 15.5% without and with anti-reflection layer on graphene, respectively. The Eta of 15.5% is higher than the state of art efficiency for graphene/Si system (14.5%). Furthermore, our calculation points out Eta of 25.8% can be reached by reasonably optimizing the open circuit voltage, junction ideality factor, resistance of graphene and metal/graphene contact. This research strongly support graphene/GaAs hetero-structure solar cell have great potential for practical applications.


Nano Letters | 2009

Phosphorus Doped Zn1-xMgxO Nanowire Arrays

Shisheng Lin; Jung-Il Hong; Jinhui Song; Ying Zhu; H. P. He; Zhijuan Xu; Yaguang Wei; Yong Ding; Robert L. Snyder; Zhong Lin Wang

We demonstrate the growth of phosphorus doped Zn(1-x)Mg(x)O nanowire (NW) using pulsed laser deposition. For the first time, p-type Zn(0.92)Mg(0.08)O:P NWs are likely obtained in reference to atomic force microscopy based piezoelectric output measurements, X-ray photoelectron spectroscopy, and the transport property between the NWs and a n-type ZnO film. A shallow acceptor level of approximately 140 meV is identified by temperature-dependent photoluminescence. A piezoelectric output of 60 mV on average has been received using the doped NWs. Besides a control on NW aspect ratio and density, band gap engineering has also been achieved by alloying with Mg to a content of x = 0.23. The alloyed NWs with controllable conductivity type have potential application in high-efficiency all-ZnO NWs based LED, high-output ZnO nanogenerator, and other optical or electrical devices.


Scientific Reports | 2015

Interface designed MoS2/GaAs heterostructure solar cell with sandwich stacked hexagonal boron nitride

Shisheng Lin; Xiaoqiang Li; Penghui Wang; Zhijuan Xu; Shengjiao Zhang; Huikai Zhong; Zhiqian Wu; Wenli Xu; Hongsheng Chen

MoS2 is a layered two-dimensional semiconductor with a direct band gap of 1.8 eV. The MoS2/bulk semiconductor system offers a new platform for solar cell device design. Different from the conventional bulk p-n junctions, in the MoS2/bulk semiconductor heterostructure, static charge transfer shifts the Fermi level of MoS2 toward that of bulk semiconductor, lowering the barrier height of the formed junction. Herein, we introduce hexagonal boron nitride (h-BN) into MoS2/GaAs heterostructure to suppress the static charge transfer, and the obtained MoS2/h-BN/GaAs solar cell exhibits an improved power conversion efficiency of 5.42%. More importantly, the sandwiched h-BN makes the Fermi level tuning of MoS2 more effective. By employing chemical doping and electrical gating into the solar cell device, PCE of 9.03% is achieved, which is the highest among all the reported monolayer transition metal dichalcogenide based solar cells.


Nanoscale | 2016

Opening the band gap of graphene through silicon doping for the improved performance of graphene/GaAs heterojunction solar cells

Shengjiao Zhang; Shisheng Lin; Xiang Li; XiaoYi Liu; HengAn Wu; Wenli Xu; Peng Wang; Zhongbiao Wu; Huikai Zhong; Zhijuan Xu

Graphene has attracted increasing interest due to its remarkable properties. However, the zero band gap of monolayered graphene limits its further electronic and optoelectronic applications. Herein, we have synthesized monolayered silicon-doped graphene (SiG) with large surface area using a chemical vapor deposition method. Raman and X-ray photoelectron spectroscopy measurements demonstrate that the silicon atoms are doped into graphene lattice at a doping level of 2.7-4.5 at%. Electrical measurements based on a field effect transistor indicate that the band gap of graphene has been opened via silicon doping without a clear degradation in carrier mobility, and the work function of SiG, deduced from ultraviolet photoelectron spectroscopy, was 0.13-0.25 eV larger than that of graphene. Moreover, when compared with the graphene/GaAs heterostructure, SiG/GaAs exhibits an enhanced performance. The performance of 3.4% silicon doped SiG/GaAs solar cell has been improved by 33.7% on average, which was attributed to the increased barrier height and improved interface quality. Our results suggest that silicon doping can effectively engineer the band gap of monolayered graphene and SiG has great potential in optoelectronic device applications.


Optics Express | 2016

Graphene/h-BN/GaAs sandwich diode as solar cell and photodetector.

Xiaoqiang Li; Shisheng Lin; Xing Lin; Zhijuan Xu; Peng Wang; Shengjiao Zhang; Huikai Zhong; Wenli Xu; Zhiqian Wu; Wei Fang

In graphene/semiconductor heterojunction, the statistic charge transfer between graphene and semiconductor leads to decreased junction barrier height and limits the Fermi level tuning effect in graphene, which greatly affects the final performance of the device. In this work, we have designed a sandwich diode for solar cells and photodetectors through inserting 2D hexagonal boron nitride (h-BN) into graphene/GaAs heterostructure to suppress the static charge transfer. The barrier height of graphene/GaAs heterojunction can be increased from 0.88 eV to 1.02 eV by inserting h-BN. Based on the enhanced Fermi level tuning effect with interface h-BN, through adopting photo-induced doping into the device, power conversion efficiency (PCE) of 10.18% has been achieved for graphene/h-BN/GaAs compared with 8.63% of graphene/GaAs structure. The performance of graphene/h-BN/GaAs based photodetector is also improved with on/off ratio increased by one magnitude compared with graphene/GaAs structure.


Applied Physics Letters | 2015

Gate tunable monolayer MoS2/InP heterostructure solar cells

Shisheng Lin; Peng Wang; Xiaoqiang Li; Zhiqian Wu; Zhijuan Xu; Shengjiao Zhang; Wenli Xu

We demonstrate monolayer molybdenum disulfide (MoS2)/indium phosphide (InP) van der Waals heterostructure with remarkable photovoltaic response. Furthermore, benefiting from the atomically thin and semiconductor nature of MoS2, we have designed the gate tunable MoS2/InP heterostructure. Applied with a top gate voltage, the Fermi level of MoS2 is effectively tuned, and the barrier height at the MoS2/InP heterojunction correspondingly changes. The power conversion efficiency of MoS2/InP solar cells has reached a value of 7.1% under AM 1.5G illumination with a gate voltage of +6 V. The tunable MoS2/InP heterostructure may be promising for highly efficient solar cells.


Applied Physics Letters | 2016

Enhanced monolayer MoS2/InP heterostructure solar cells by graphene quantum dots

Peng Wang; Shisheng Lin; Guqiao Ding; Xiaoqiang Li; Zhiqian Wu; Shengjiao Zhang; Zhijuan Xu; Sen Xu; Yanghua Lu; Wenli Xu; Zheyang Zheng

We demonstrate significantly improved photovoltaic response of monolayer molybdenum disulfide (MoS2)/indium phosphide (InP) van der Waals heterostructure induced by graphene quantum dots (GQDs). Raman and photoluminescence measurements indicate that effective charge transfer takes place between GQDs and MoS2, which results in n-type doping of MoS2. The doping effect increases the barrier height at the MoS2/InP heterojunction, thus the averaged power conversion efficiency of MoS2/InP solar cells is improved from 2.1% to 4.1%. The light induced doping by GQD provides a feasible way for developing more efficient MoS2 based heterostructure solar cells.


Applied Physics Letters | 2015

Graphene/CdTe heterostructure solar cell and its enhancement with photo-induced doping

Shisheng Lin; Xiaoqiang Li; Shengjiao Zhang; Peng Wang; Zhijuan Xu; Huikai Zhong; Zhiqian Wu; Hongsheng Chen

We report a type of solar cell based on graphene/CdTe Schottky heterostructure, which can be improved by surface engineering as graphene is atomic thin. By coating a layer of ultrathin CdSe quantum dots onto graphene/CdTe heterostructure, the power conversion efficiency is increased from 2.08% to 3.10%. Photo-induced doping is mainly accounted for this enhancement, as evidenced by field effect transport, Raman, photoluminescence, and quantum efficiency measurements. This work demonstrates a feasible way of improving the performance of graphene/semiconductor heterostructure solar cells by combining one dimensional with two dimensional materials.


Applied Physics Letters | 2015

Two dimensional graphene nanogenerator by coulomb dragging: Moving van der Waals heterostructure

Huikai Zhong; Xiaoqiang Li; Zhiqian Wu; Shengjiao Zhang; Zhijuan Xu; Hongsheng Chen; Shisheng Lin

Harvesting energy from environment is the current focus of scientific community. Here, we demonstrate a graphene nanogenerator, which is based on moving van der Waals heterostructure formed between graphene and two dimensional (2D) graphene oxide (GO). This nanogenerator can convert mechanical energy into electricity with a voltage output of around 10 mV. Systematic experiments reveal the generated electricity originates from the coulomb interaction induced momentum transfer between 2D GO and holes in graphene. 2D boron nitride was also demonstrated to be effective in the framework of moving van der Waals heterostructure nanogenerator. This investigation of nanogenerator based on the interaction between 2D macromolecule materials will be important to understand the origin of the flow-induced potential in nanomaterials and may have great potential in practical applications.


Nano Energy | 2016

Monolayer MoS2/GaAs heterostructure self-driven photodetector with extremely high detectivity

Zhijuan Xu; Shisheng Lin; Xiaoqiang Li; Shengjiao Zhang; Zhiqian Wu; Wenli Xu; Yanghua Lu; Sen Xu

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Sen Xu

Zhejiang University

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