The Experts below are selected from a list of 25239 Experts worldwide ranked by ideXlab platform
Yu Zhao - One of the best experts on this subject based on the ideXlab platform.
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ZnO-nanorods/graphene heterostructure: a Direct Electron Transfer glucose biosensor
Scientific Reports, 2016Co-Authors: Yu Zhao, Lijia Pan, Dongyuan Zhai, Lanlan Li, Xinran Wang, Wenbo Li, Wen Cheng, Wei Yin, Yu Wang, Jianbin XuAbstract:ZnO-nanorods/graphene heterostructure was synthesized by hydrothermal growth of ZnO nanorods on chemically reduced graphene (CRG) film. The hybrid structure was demonstrated as a biosensor, where Direct Electron Transfer between glucose oxidase (GOD) and electrode was observed. The charge Transfer was attributed to the ZnO nanorod wiring between the redox center of GOD and electrode, and the ZnO/graphene heterostructure facilitated the transport of Electrons on the hybride electrode. The glucose sensor based on the GOD-ZnO/CRG/Pt electrode had a high sensitivity of 17.64 μA mM−1, which is higher than most of the previously reported values for Direct Electron Transfer based glucose biosensors. Moreover, this biosensor is linearly proportional to the concentration of glucose in the range of 0.2–1.6 mM. The study revealed that the band structure of electrode could affect the detection of Direct Electron Transfer of GOD, which would be helpful for the design of the biosensor electrodes in the future.
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zno nanorods graphene heterostructure a Direct Electron Transfer glucose biosensor
Scientific Reports, 2016Co-Authors: Yu Zhao, Lijia Pan, Dongyuan Zhai, Xinran Wang, Wen Cheng, Wei Yin, Yu Wang, Yi ShiAbstract:ZnO-nanorods/graphene heterostructure was synthesized by hydrothermal growth of ZnO nanorods on chemically reduced graphene (CRG) film. The hybrid structure was demonstrated as a biosensor, where Direct Electron Transfer between glucose oxidase (GOD) and electrode was observed. The charge Transfer was attributed to the ZnO nanorod wiring between the redox center of GOD and electrode and the ZnO/graphene heterostructure facilitated the transport of Electrons on the hybride electrode. The glucose sensor based on the GOD-ZnO/CRG/Pt electrode had a high sensitivity of 17.64 μA mM−1, which is higher than most of the previously reported values for Direct Electron Transfer based glucose biosensors. Moreover, this biosensor is linearly proportional to the concentration of glucose in the range of 0.2–1.6 mM. The study revealed that the band structure of electrode could affect the detection of Direct Electron Transfer of GOD, which would be helpful for the design of the biosensor electrodes in the future.
Yi Shi - One of the best experts on this subject based on the ideXlab platform.
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zno nanorods graphene heterostructure a Direct Electron Transfer glucose biosensor
Scientific Reports, 2016Co-Authors: Yu Zhao, Lijia Pan, Dongyuan Zhai, Xinran Wang, Wen Cheng, Wei Yin, Yu Wang, Yi ShiAbstract:ZnO-nanorods/graphene heterostructure was synthesized by hydrothermal growth of ZnO nanorods on chemically reduced graphene (CRG) film. The hybrid structure was demonstrated as a biosensor, where Direct Electron Transfer between glucose oxidase (GOD) and electrode was observed. The charge Transfer was attributed to the ZnO nanorod wiring between the redox center of GOD and electrode and the ZnO/graphene heterostructure facilitated the transport of Electrons on the hybride electrode. The glucose sensor based on the GOD-ZnO/CRG/Pt electrode had a high sensitivity of 17.64 μA mM−1, which is higher than most of the previously reported values for Direct Electron Transfer based glucose biosensors. Moreover, this biosensor is linearly proportional to the concentration of glucose in the range of 0.2–1.6 mM. The study revealed that the band structure of electrode could affect the detection of Direct Electron Transfer of GOD, which would be helpful for the design of the biosensor electrodes in the future.
Jianbin Xu - One of the best experts on this subject based on the ideXlab platform.
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ZnO-nanorods/graphene heterostructure: a Direct Electron Transfer glucose biosensor
Scientific Reports, 2016Co-Authors: Yu Zhao, Lijia Pan, Dongyuan Zhai, Lanlan Li, Xinran Wang, Wenbo Li, Wen Cheng, Wei Yin, Yu Wang, Jianbin XuAbstract:ZnO-nanorods/graphene heterostructure was synthesized by hydrothermal growth of ZnO nanorods on chemically reduced graphene (CRG) film. The hybrid structure was demonstrated as a biosensor, where Direct Electron Transfer between glucose oxidase (GOD) and electrode was observed. The charge Transfer was attributed to the ZnO nanorod wiring between the redox center of GOD and electrode, and the ZnO/graphene heterostructure facilitated the transport of Electrons on the hybride electrode. The glucose sensor based on the GOD-ZnO/CRG/Pt electrode had a high sensitivity of 17.64 μA mM−1, which is higher than most of the previously reported values for Direct Electron Transfer based glucose biosensors. Moreover, this biosensor is linearly proportional to the concentration of glucose in the range of 0.2–1.6 mM. The study revealed that the band structure of electrode could affect the detection of Direct Electron Transfer of GOD, which would be helpful for the design of the biosensor electrodes in the future.
Lijia Pan - One of the best experts on this subject based on the ideXlab platform.
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ZnO-nanorods/graphene heterostructure: a Direct Electron Transfer glucose biosensor
Scientific Reports, 2016Co-Authors: Yu Zhao, Lijia Pan, Dongyuan Zhai, Lanlan Li, Xinran Wang, Wenbo Li, Wen Cheng, Wei Yin, Yu Wang, Jianbin XuAbstract:ZnO-nanorods/graphene heterostructure was synthesized by hydrothermal growth of ZnO nanorods on chemically reduced graphene (CRG) film. The hybrid structure was demonstrated as a biosensor, where Direct Electron Transfer between glucose oxidase (GOD) and electrode was observed. The charge Transfer was attributed to the ZnO nanorod wiring between the redox center of GOD and electrode, and the ZnO/graphene heterostructure facilitated the transport of Electrons on the hybride electrode. The glucose sensor based on the GOD-ZnO/CRG/Pt electrode had a high sensitivity of 17.64 μA mM−1, which is higher than most of the previously reported values for Direct Electron Transfer based glucose biosensors. Moreover, this biosensor is linearly proportional to the concentration of glucose in the range of 0.2–1.6 mM. The study revealed that the band structure of electrode could affect the detection of Direct Electron Transfer of GOD, which would be helpful for the design of the biosensor electrodes in the future.
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zno nanorods graphene heterostructure a Direct Electron Transfer glucose biosensor
Scientific Reports, 2016Co-Authors: Yu Zhao, Lijia Pan, Dongyuan Zhai, Xinran Wang, Wen Cheng, Wei Yin, Yu Wang, Yi ShiAbstract:ZnO-nanorods/graphene heterostructure was synthesized by hydrothermal growth of ZnO nanorods on chemically reduced graphene (CRG) film. The hybrid structure was demonstrated as a biosensor, where Direct Electron Transfer between glucose oxidase (GOD) and electrode was observed. The charge Transfer was attributed to the ZnO nanorod wiring between the redox center of GOD and electrode and the ZnO/graphene heterostructure facilitated the transport of Electrons on the hybride electrode. The glucose sensor based on the GOD-ZnO/CRG/Pt electrode had a high sensitivity of 17.64 μA mM−1, which is higher than most of the previously reported values for Direct Electron Transfer based glucose biosensors. Moreover, this biosensor is linearly proportional to the concentration of glucose in the range of 0.2–1.6 mM. The study revealed that the band structure of electrode could affect the detection of Direct Electron Transfer of GOD, which would be helpful for the design of the biosensor electrodes in the future.
Dongyuan Zhai - One of the best experts on this subject based on the ideXlab platform.
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ZnO-nanorods/graphene heterostructure: a Direct Electron Transfer glucose biosensor
Scientific Reports, 2016Co-Authors: Yu Zhao, Lijia Pan, Dongyuan Zhai, Lanlan Li, Xinran Wang, Wenbo Li, Wen Cheng, Wei Yin, Yu Wang, Jianbin XuAbstract:ZnO-nanorods/graphene heterostructure was synthesized by hydrothermal growth of ZnO nanorods on chemically reduced graphene (CRG) film. The hybrid structure was demonstrated as a biosensor, where Direct Electron Transfer between glucose oxidase (GOD) and electrode was observed. The charge Transfer was attributed to the ZnO nanorod wiring between the redox center of GOD and electrode, and the ZnO/graphene heterostructure facilitated the transport of Electrons on the hybride electrode. The glucose sensor based on the GOD-ZnO/CRG/Pt electrode had a high sensitivity of 17.64 μA mM−1, which is higher than most of the previously reported values for Direct Electron Transfer based glucose biosensors. Moreover, this biosensor is linearly proportional to the concentration of glucose in the range of 0.2–1.6 mM. The study revealed that the band structure of electrode could affect the detection of Direct Electron Transfer of GOD, which would be helpful for the design of the biosensor electrodes in the future.
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zno nanorods graphene heterostructure a Direct Electron Transfer glucose biosensor
Scientific Reports, 2016Co-Authors: Yu Zhao, Lijia Pan, Dongyuan Zhai, Xinran Wang, Wen Cheng, Wei Yin, Yu Wang, Yi ShiAbstract:ZnO-nanorods/graphene heterostructure was synthesized by hydrothermal growth of ZnO nanorods on chemically reduced graphene (CRG) film. The hybrid structure was demonstrated as a biosensor, where Direct Electron Transfer between glucose oxidase (GOD) and electrode was observed. The charge Transfer was attributed to the ZnO nanorod wiring between the redox center of GOD and electrode and the ZnO/graphene heterostructure facilitated the transport of Electrons on the hybride electrode. The glucose sensor based on the GOD-ZnO/CRG/Pt electrode had a high sensitivity of 17.64 μA mM−1, which is higher than most of the previously reported values for Direct Electron Transfer based glucose biosensors. Moreover, this biosensor is linearly proportional to the concentration of glucose in the range of 0.2–1.6 mM. The study revealed that the band structure of electrode could affect the detection of Direct Electron Transfer of GOD, which would be helpful for the design of the biosensor electrodes in the future.