本文采用电化学性能独特的联吡啶钌(Ru(bpy)32+)、氮掺杂石墨烯(NG)和Nafion膜构建了一种新型的盐酸异丙嗪电化学传感器。采用红外光谱和扫描电子显微镜对氮掺杂石墨烯的形貌进行了表征。在Nafion膜中添加导电性好、比表面积大...本文采用电化学性能独特的联吡啶钌(Ru(bpy)32+)、氮掺杂石墨烯(NG)和Nafion膜构建了一种新型的盐酸异丙嗪电化学传感器。采用红外光谱和扫描电子显微镜对氮掺杂石墨烯的形貌进行了表征。在Nafion膜中添加导电性好、比表面积大的氮掺杂石墨烯可以增加电子传递速度并且可以防止联吡啶钌扩散到Nafion膜的非电活性区域而增加电极使用寿命。在p H 7.0的磷酸盐缓冲溶液中,盐酸异丙嗪在Ru(bpy)32+/NG/Nafion修饰电极上的循环伏安曲线表明,与单一的裸玻碳电极、Ru(bpy)32+/Nafion修饰电极以及NG/Nafion修饰电极相比,该修饰电极使盐酸异丙嗪得氧化峰电流显著增加,而峰电位明显负移,表明采用Ru(bpy)32+/NG/Nafion膜制备的复合修饰电极对盐酸异丙嗪呈现出较强的电化学催化作用。优化实验条件后,发现在1.0×10^-6mol·L^-1~1.0×10^-4mol·L^-1.浓度范围内,盐酸异丙嗪的氧化峰电流与其浓度呈良好的线性关系,检测限为3.6×10^-7mol·L^-1。而且该电极的重现性、稳定性和选择性良好,采用标准加入法可成功用于商业盐酸异丙嗪注射液中盐酸异丙嗪的测定。展开更多
Biomass-derived carbon materials have aroused widespread concern as host material of sulfur to enhance electrochemical performances for lithium–sulfur batteries. Herein, goat hair, as a low-cost and eco-friendly prec...Biomass-derived carbon materials have aroused widespread concern as host material of sulfur to enhance electrochemical performances for lithium–sulfur batteries. Herein, goat hair, as a low-cost and eco-friendly precursor, is employed to fabricate cauliflower-like in-situ nitrogen, oxygen and phosphorus tri-doped porous biomass carbon(NOPC) by a facile activation with H_3PO_4 and carbonization process.The morphology and microstructure of NOPC can be readily tuned by altering pyrolysis temperature. The as-prepared NOPC matrix material carbonized at 600 °C possesses 3D hierarchical porous structure, high specific surface area(535.352 m^2 g^(-1)), and appropriate pore size and pore size distribution. Encapsulating sulfur into the NOPC depends on a stem-melting technology as cathode materials of Li–S batteries. Due to the synergistic effect of special physical structure and inherent tri-doping of N, O and P, electrons and ions transfer and utilization of active sulfur in the materials are improved, and the shuttle behaviors of soluble lithium polysulfides are also mitigated. Consequently, the S/NOPC-600 composite exhibits excellent electrochemical performance, giving a high initial discharge capacity of 1185 mA h g^(-1) at 0.05 C and maintaining a relatively considerable capacity of 489 m A h g^(-1) at 0.2 C after 300 cycles. Our work shows that a promising candidate for cathode material of Li–S batteries can be synthesized using low-cost and renewable biomass materials by a facile process.展开更多
文摘本文采用电化学性能独特的联吡啶钌(Ru(bpy)32+)、氮掺杂石墨烯(NG)和Nafion膜构建了一种新型的盐酸异丙嗪电化学传感器。采用红外光谱和扫描电子显微镜对氮掺杂石墨烯的形貌进行了表征。在Nafion膜中添加导电性好、比表面积大的氮掺杂石墨烯可以增加电子传递速度并且可以防止联吡啶钌扩散到Nafion膜的非电活性区域而增加电极使用寿命。在p H 7.0的磷酸盐缓冲溶液中,盐酸异丙嗪在Ru(bpy)32+/NG/Nafion修饰电极上的循环伏安曲线表明,与单一的裸玻碳电极、Ru(bpy)32+/Nafion修饰电极以及NG/Nafion修饰电极相比,该修饰电极使盐酸异丙嗪得氧化峰电流显著增加,而峰电位明显负移,表明采用Ru(bpy)32+/NG/Nafion膜制备的复合修饰电极对盐酸异丙嗪呈现出较强的电化学催化作用。优化实验条件后,发现在1.0×10^-6mol·L^-1~1.0×10^-4mol·L^-1.浓度范围内,盐酸异丙嗪的氧化峰电流与其浓度呈良好的线性关系,检测限为3.6×10^-7mol·L^-1。而且该电极的重现性、稳定性和选择性良好,采用标准加入法可成功用于商业盐酸异丙嗪注射液中盐酸异丙嗪的测定。
基金supported by the projects of Sichuan Normal University(DJ GX2017017 and DJ GX2017018)
文摘Biomass-derived carbon materials have aroused widespread concern as host material of sulfur to enhance electrochemical performances for lithium–sulfur batteries. Herein, goat hair, as a low-cost and eco-friendly precursor, is employed to fabricate cauliflower-like in-situ nitrogen, oxygen and phosphorus tri-doped porous biomass carbon(NOPC) by a facile activation with H_3PO_4 and carbonization process.The morphology and microstructure of NOPC can be readily tuned by altering pyrolysis temperature. The as-prepared NOPC matrix material carbonized at 600 °C possesses 3D hierarchical porous structure, high specific surface area(535.352 m^2 g^(-1)), and appropriate pore size and pore size distribution. Encapsulating sulfur into the NOPC depends on a stem-melting technology as cathode materials of Li–S batteries. Due to the synergistic effect of special physical structure and inherent tri-doping of N, O and P, electrons and ions transfer and utilization of active sulfur in the materials are improved, and the shuttle behaviors of soluble lithium polysulfides are also mitigated. Consequently, the S/NOPC-600 composite exhibits excellent electrochemical performance, giving a high initial discharge capacity of 1185 mA h g^(-1) at 0.05 C and maintaining a relatively considerable capacity of 489 m A h g^(-1) at 0.2 C after 300 cycles. Our work shows that a promising candidate for cathode material of Li–S batteries can be synthesized using low-cost and renewable biomass materials by a facile process.