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三维柔性神经微电极阵列的制作 被引量:7
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作者 孙晓娜 周洪波 +4 位作者 李刚 朱壮晖 姚源 赵建龙 任秋实 《光学精密工程》 EI CAS CSCD 北大核心 2008年第8期1396-1402,共7页
提出了一种三维凸起柔性神经微电极阵列的制作方法。该方法以光敏性聚酰亚胺(Durimide 7510)为基质材料,以各向异性刻蚀的硅为模具,结合微注模、金属微图形化和牺牲层电化学释放技术制作三维凸起柔性微电极,并通过数值模拟、形貌观测和... 提出了一种三维凸起柔性神经微电极阵列的制作方法。该方法以光敏性聚酰亚胺(Durimide 7510)为基质材料,以各向异性刻蚀的硅为模具,结合微注模、金属微图形化和牺牲层电化学释放技术制作三维凸起柔性微电极,并通过数值模拟、形貌观测和电学性能测试对制备的微电极进行了评价。利用上述方法制备了具有4×4电极位点阵列的三维柔性神经微电极,每个电极位点大小为60μm×60μm,高度约37μm。阻抗测试显示,1 kHz时三维凸起电极位点的阻抗比传统的相同大小的平面微电极阵列约降低63%。结果表明,该电极的凸起特点可以保证电极刺激位点与神经细胞的良好接触,同时凸起结构也增加了电极刺激位点的表面积,改善了电极刺激位点的电荷注入能力,可有效提高刺激效果。 展开更多
关键词 人工视觉 三维柔性电极 电极阵列 电极表面积
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电极对微生物燃料电池同时处理有机废水和含铜重金属废水产电性能的影响 被引量:8
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作者 印霞棐 刘维平 《化工进展》 EI CAS CSCD 北大核心 2015年第4期1152-1158,1170,共8页
实验以有机废水为阳极底物,以活性污泥中的混合菌为阳极接种微生物,以含铜废水为阴极液,构建双室MFC,探讨电极对MFC同时处理有机废水和含铜重金属废水产电性能的影响。结果表明:MFC对阳极有机废水COD的去除率最高为79.1%,对阴极液中Cu2... 实验以有机废水为阳极底物,以活性污泥中的混合菌为阳极接种微生物,以含铜废水为阴极液,构建双室MFC,探讨电极对MFC同时处理有机废水和含铜重金属废水产电性能的影响。结果表明:MFC对阳极有机废水COD的去除率最高为79.1%,对阴极液中Cu2+的去除率最高为95.6%。活性炭/石墨棒电极MFC产电性能最优,开路电压最高为800mV,是石墨棒电极MFC的1.25倍,是活性炭/碳纸电极MFC的1.3倍,是碳纸电极MFC的1.5倍。当电极距离为2cm时,MFC开路电压580mV,内阻为181Ω,产电性能最优。电极表面积为75cm2时,MFC的开路电压470mV,是电极表面积为50cm2的MFC的1.1倍,是电极表面积为30cm2的MFC的2.1倍。当AAn/Acat=0.4时MFC产能最佳,MFC的开路电压最高为600mV,最大功率密度48.2mW/m2。 展开更多
关键词 微生物燃料电池 电极材料 电极距离 电极表面积 产电性能 废水处理
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Variation of Membrane Electrode Assembly Catalyst Layer in Unitized Regenerative Fuel Cell
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作者 Yollanda Nurcholifah Dedi Rohendi +4 位作者 Edy Herianto Majlan Nirwan Syarif Addy Rachmat Dwi Hawa Yulianti Nyimas Febrika S 《电化学(中英文)》 北大核心 2025年第4期32-43,共12页
A unitized regenerative fuel cell(URFC)is a device that may function reversibly as either a fuel cell(FC)or water elec-trolysis(WE).An important component of this device is the Membrane electrode assembly(MEA).Therefo... A unitized regenerative fuel cell(URFC)is a device that may function reversibly as either a fuel cell(FC)or water elec-trolysis(WE).An important component of this device is the Membrane electrode assembly(MEA).Therefore,this study aimed to compare the performance outcomes of MEA using electrodes with single and three catalyst layers.This study measured Electrochemical Surface Area(ECSA),Electrochemical Impedance Spectroscopy(EIS),X-ray Diffraction analysis(XRD),and X-ray Fluorescence(XRF).Furthermore,the round-trip efficiency(RTE)of the MEA,as w ell as the performance in FC and WE mode,was measured.In comparison,The ECSA values of Pt-Ru/C and Pt/C with three catalyst layers were higher than the single catalyst layer.This result was supported by electrode characterization data for XRD and XRF.The respective electrical conductivity values of Pt-Ru/C and Pt/C with three catalyst layers are also higher than the single cata-lyst layer,and the performance of URFC using MEA with three catalyst layers has the highest value of RTE among the MEA performances of URFC,which is 100%at a current density of 4 mA·cm-2. 展开更多
关键词 Unitized regenerative fuel cell Round trip efficiency Pt-Ru/C Membrane electrode assembly Electrochemical surface area
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A rapid one-step electrodeposition process for fabrication of superhydrobic surfaces on anode and cathode 被引量:3
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作者 郝丽梅 闫小乐 +2 位作者 解忧 张涛 陈志 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第7期1576-1583,共8页
This work presents a method to solve the weak solubility of zinc chloride(ZnCl_2) in the ethanol by adding some reasonable water into an ethanol electrolyte containing ZnCl_2 and myristic acid(CH_3(CH_2)_(12)COOH).A r... This work presents a method to solve the weak solubility of zinc chloride(ZnCl_2) in the ethanol by adding some reasonable water into an ethanol electrolyte containing ZnCl_2 and myristic acid(CH_3(CH_2)_(12)COOH).A rapid one-step electrodeposition process was developed to fabricate anodic(2.5 min) and cathodic(40 s) superhydrophobic surfaces of copper substrate(contact angle more than 150°) in an aqueous ethanol electrolyte.Morphology,composition,chemical structure and superhydrophobicity of these superhydrophobic surfaces were investigated by SEM,FTIR,XRD,and contact angle measurement,respectively.The results indicate that water ratio of the electrolyte can reduce the required deposition time,superhydrophobic surface needs over 30 min with anhydrous electrolyte,while it needs only 2.5 min with electrolyte including 10 mL water,and the maximum contact angle of anodic surface is 166° and that of the cathodic surface is 168°.Two copper electrode surfaces have different reactions in the process of electrodeposition time,and the anodic copper surface covers copper myristate(Cu[CH_3(CH_2)_(12)COO]_2) and cupric chloride(CuCl);while,zinc myristate(Zn[CH_3(CH_2)_(12)COO]_2) and pure zinc(Zn) appear on the cathodic surface. 展开更多
关键词 one-step electrodeposition process SUPERHYDROPHOBICITY contact angle AQUEOUS ANODE CATHODE
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