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新型微电极葡萄糖传感器 被引量:1
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作者 刘敬伟 边超 +2 位作者 韩泾鸿 夏善红 陈绍凤 《仪器仪表学报》 EI CAS CSCD 北大核心 2004年第z1期396-397,411,共3页
提出了一种新型的微电极葡萄糖传感器。以与IC兼容的硅作为基底材料,利用MEMS加工工艺,采用硅腐蚀及SU8微反应池方法制成了新型微电极传感器。与传统的电流型传感器相比,该传感器有较小的敏感面积(1mm×1mm),较低的检测下限(1×... 提出了一种新型的微电极葡萄糖传感器。以与IC兼容的硅作为基底材料,利用MEMS加工工艺,采用硅腐蚀及SU8微反应池方法制成了新型微电极传感器。与传统的电流型传感器相比,该传感器有较小的敏感面积(1mm×1mm),较低的检测下限(1×10-4M),较宽的检测范围(1×10-4~1×10-2M),较好的重现性与稳定性,以及易于与处理电路集成等优点。 展开更多
关键词 传感器 GOD 电极 微反应池 硅腐蚀 葡萄糖
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体硅加工微电极传感器研究
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作者 刘敬伟 边超 +3 位作者 韩泾鸿 陈绍凤 白强 夏善红 《仪器仪表学报》 EI CAS CSCD 北大核心 2004年第z3期144-147,共4页
应用新的体硅加工技术和新的电极表面修饰方法,提出了一种新型电流型微电极传感器。以与IC兼容的硅作为基底材料,利用体硅加工工艺,采用各向异性硅腐蚀及SU- 8微反应池方法制成了新型体硅加工电极。同时,铂化并聚合被首次用来作电极表... 应用新的体硅加工技术和新的电极表面修饰方法,提出了一种新型电流型微电极传感器。以与IC兼容的硅作为基底材料,利用体硅加工工艺,采用各向异性硅腐蚀及SU- 8微反应池方法制成了新型体硅加工电极。同时,铂化并聚合被首次用来作电极表面修饰。以葡萄糖检测为例,使用吡咯作为聚合材料,新传感器与传统的电流型传感器相比,有较小的敏感面积(1m m×1mm )、较大的敏感系数(39.6 4 0 n A.m M- 1 .m m- 2 )、较低的检测下限(1×10 - 4M)、较宽的检测范围(1×10 - 4~1×10 - 2 M)、较好的重现性(五次测量的RSD为3.2 % )与稳定性(温室保存一个月后活性保留95 %以上)、以及易于与处理电路集成等优点。 展开更多
关键词 传感器 电流型 电极 体硅加工 微反应池
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A CNT Intercalated Co Porphyrin-Based Metal Organic Framework Catalyst for Oxygen Reduction Reaction
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作者 Pei-Pei He Jin-Hua Shi +6 位作者 Xiao-Yu Li Ming-Jie Liu Zhou Fang Jing He Zhong-Jian Li Xin-Sheng Peng Qing-Gang He 《电化学(中英文)》 北大核心 2025年第1期31-40,共10页
The poor electronic conductivity of metal-organic framework(MOF)materials hinders their direct application in the field of electrocatalysis in fuel cells.Herein,we proposed a strategy of embedding carbon nanotubes(CNT... The poor electronic conductivity of metal-organic framework(MOF)materials hinders their direct application in the field of electrocatalysis in fuel cells.Herein,we proposed a strategy of embedding carbon nanotubes(CNTs)during the growth process of MOF crystals,synthesizing a metalloporphyrin-based MOF catalyst TCPPCo-MOF-CNT with a unique CNT-intercalated MOF structure.Physical characterization revealed that the CNTs enhance the overall conductivity while retaining the original characteristics of the MOF and metalloporphyrin.Simultaneously,the insertion of CNTs generated adequate mesopores and created a hierarchical porous structure that enhances mass transfer efficiency.X-ray photoelectron spectroscopic analysis confirmed that the C atom in CNT changed the electron cloud density on the catalytic active center Co,optimizing the electronic structure.Consequently,the E_(1/2) of the TCPPCo-MOF-CNT catalyst under neutral conditions reached 0.77 V(vs.RHE),outperforming the catalyst without CNTs.When the TCPPCo-MOF-CNT was employed as the cathode catalyst in assembling microbial fuel cells(MFCs)with Nafion-117 as the proton exchange membrane,the maxi-mum power density of MFCs reached approximately 500 mW·m^(-2). 展开更多
关键词 Metal organic framework CNT intercalated ELECTROCATALYSIS Oxygen reduction reaction Microbial fuel cell
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Hydrogen production performance of the non⁃platinum⁃based MoS_(2)/CuS cathode in microbial electrolytic cells
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作者 HAO Pingping LI Fangfang +5 位作者 WANG Yawen LI Houfen ZHANG Xiao LI Rui WANG Lei LIU Jianxin 《无机化学学报》 SCIE CAS CSCD 北大核心 2024年第9期1811-1824,共14页
MoS_(2)/CuS composite catalysts were successfully synthesized using a one-step hydrothermal method with sodium molybdate dihydrate,thiourea,oxalic acid,and copper nitrate trihydrate as raw materials.The hydrogen pro-d... MoS_(2)/CuS composite catalysts were successfully synthesized using a one-step hydrothermal method with sodium molybdate dihydrate,thiourea,oxalic acid,and copper nitrate trihydrate as raw materials.The hydrogen pro-duction performance of MoS_(2)/CuS prepared with different molar ratios of Mo to Cu precursors(n_(Mo)∶n_(Cu))as cathodic catalysts was investigated in the two-chamber microbial electrolytic cell(MEC).X-ray diffraction(XRD),X-ray pho-toelectron spectroscopy(XPS),scanning electron microscopy(SEM),transmission electron microscope(TEM),linear scanning voltammetry(LSV),electrochemical impedance analysis(EIS),and cyclic voltammetry(CV)were used to characterize the synthesized catalysts for testing and analyzing the hydrogen-producing performance.The results showed that the hydrogen evolution performance of MoS_(2)/CuS-20%(nMo∶nCu=5∶1)was better than that of platinum(Pt)mesh,and the hydrogen production rate of MoS_(2)/CuS-20%as a cathode in MEC was(0.2031±0.0237)m^(3)_(H_(2))·m^(-3)·d^(-1) for 72 h at an applied voltage of 0.8 V,which was slightly higher than that of Pt mesh of(0.1886±0.0134)m^(3)_(H_(2))·m^(-3)·d^(-1).The addition of a certain amount of CuS not only regulates the electron transfer ability of MoS_(2) but also increases the density of active sites. 展开更多
关键词 microbial electrolysis cell hydrogen evolution reaction MoS_(2)/CuS composite catalyst Pt mesh
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A system combining microbial fuel cell with photobioreactor for continuous domestic wastewater treatment and bioelectricity generation 被引量:9
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作者 蒋海明 罗生军 +2 位作者 师晓爽 戴萌 郭荣波 《Journal of Central South University》 SCIE EI CAS 2013年第2期488-494,共7页
A coupled system consisting of an upflow membrane-less microbial fuel cell (upflow ML-MFC) and a photobioreactor was developed, and its effectiveness for continuous wastewater treatment and electricity production was ... A coupled system consisting of an upflow membrane-less microbial fuel cell (upflow ML-MFC) and a photobioreactor was developed, and its effectiveness for continuous wastewater treatment and electricity production was evaluated. Wastewater was fed to the upflow ML-MFC to remove chemical oxygen demand (COD), phosphorus and nitrogen with simultaneous electricity generation. The effluent from the cathode compartment of the upflow ML-MFC was then continuously fed to an external photobioreactor for removing the remaining phosphorus and nitrogen using microalgae. Alone, the upflow ML-MFC produces a maximum power density of 481 mW/m 3 , and obtains 77.9% COD, 23.5% total phosphorus (TP) and 97.6% NH4+-N removals. When combined with the photobioreactor, the system achieves 99.3% TP and 99.0% NH4+-N total removal. These results show both the effectiveness and the potential application of the coupled system to continuously treat domestic wastewater and simultaneously generate electricity and biomass. 展开更多
关键词 wastewater treatment microbial fuel cell PHOTOBIOREACTOR MICROALGAE BIOELECTRICITY
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