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Nitrogen-doped carbon nanotube/polyaniline composite:Synthesis, characterization, and its application to the detection of dopamine 被引量:4
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作者 FENG XiaoMiao LI RuiMei +4 位作者 MA YanWen CHEN RunFeng MEI QunBo FAN QuLi HUANG Wei 《Science China Chemistry》 SCIE EI CAS 2011年第10期1615-1621,共7页
Nitrogen-doped carbon nanotubes (N-CNTs)/polyaniline (PANI) composites are developed as an electrode material for biosensors. The morphology, composition, and optical properties of the resulting products were characte... Nitrogen-doped carbon nanotubes (N-CNTs)/polyaniline (PANI) composites are developed as an electrode material for biosensors. The morphology, composition, and optical properties of the resulting products were characterized by transmission electron microscopy (TEM), thermogravimetric analysis (TGA), Fourier transform infrared spectroscopy (FT-IR), and ultraviolet-visible absorption spectra (UV-vis). Furthermore, N-CNTs/PANI composite was immobilized on the surface of a glassy carbon electrode (GCE) and applied to construct a sensor. The obtained N-CNTs/PANI-modified GCE showed one pair of redox peaks and high catalytic activity for the oxidation of dopamine (DA) in a neutral environment. Differential pulse voltam-mograms results illustrate that the fabricated DA biosensor has high anti-interference ability towards ascorbic acid (AA). In addition, the fabricated biosensor showed superior performances with two wide linear ranges from 1 to 80 μM and from 1.5 to 3.5 mM and a low detection limit of 0.01 μM. 展开更多
关键词 nitrogen-doped carbon nanotubes (n-cnts) POLYAnILInE biosensors DOPAMInE
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氮掺杂碳纳米管双电层微型超级电容器性能研究
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作者 马舜 王星辉 程树英 《科技与创新》 2021年第19期68-69,71,共3页
采用一种疏水性的模板胶图形化电沉积聚吡咯纳米管(PPyNTs)叉指电极,将其高温碳化后制备得到氮掺杂碳纳米管(N-CNTs)平面超级电容器,并研究其平面超级电容器性能。研究发现,平面MSCs在8μA/cm2的电流密度下具有606.1µF/cm2的面积... 采用一种疏水性的模板胶图形化电沉积聚吡咯纳米管(PPyNTs)叉指电极,将其高温碳化后制备得到氮掺杂碳纳米管(N-CNTs)平面超级电容器,并研究其平面超级电容器性能。研究发现,平面MSCs在8μA/cm2的电流密度下具有606.1µF/cm2的面积比电容。与此同时,平面MSCs的最大面积能量密度和功率密度分别为0.054µWh/cm3和102µW/cm2,展现出双电层电容器(EDLCs)的优异性能。 展开更多
关键词 平面微型超级电容器 PPynTs 碳化 n-cnts
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Co and N co-modified carbon nanotubes as efficient electrocatalyst for oxygen reduction reaction 被引量:8
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作者 Ying-Gang Zhu Chao-Qun Shang +4 位作者 Zhen-Yu Wang Jian-Qiao Zhang Ming-Yang Yang Hua Cheng Zhou-Guang Lu 《Rare Metals》 SCIE EI CAS CSCD 2021年第1期90-95,共6页
It is a big challenge to prepare non-rare metal and high-activity electrocatalysts for oxygen reduction reaction(ORR).In this paper,a cobalt/carbon nanotubes/chitosan composite gel was synthesized and then annealed un... It is a big challenge to prepare non-rare metal and high-activity electrocatalysts for oxygen reduction reaction(ORR).In this paper,a cobalt/carbon nanotubes/chitosan composite gel was synthesized and then annealed under nitrogen atmosphere to yield the cobalt and nitrogen co-modified carbon nanotubes(Co-N-CNTs)nanocomposite electrocatalysts.In this strategy,the cobalt component considerably enhanced the ORR activity and improved the degree of graphitic structure to increase the electronic conductivity.The chitosan served as sustainable source for nitrogen doping.The Co-N-CNTs exhibit excellent oxygen reduction reaction(ORR)electrocatalytic activity due to the synergetic effect of Co species and N-doping.The Co-N-CNTs also deliver excellent methanol tolerance and superior long-term durability to that of commercial Pt/C,making it a promising ORR electrocatalyst. 展开更多
关键词 Co-n-cnts n-DOPInG Long-term durability Methanol tolerance ORR
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氮掺杂碳纳米管增强中空纤维液相微萃取-高效液相色谱法测定生物样本中溴系阻燃剂 被引量:1
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作者 马琳琳 张泽霖 +6 位作者 清江 孟桃于 焦叶 陈茂龙 文李 程云辉 丁利 《分析测试学报》 CAS CSCD 北大核心 2023年第9期1104-1111,共8页
该文建立了氮掺杂碳纳米管(N-CNTs)增强中空纤维液相微萃取(HF-LPME)结合高效液相色谱(HPLC)同时检测生物样品中四溴双酚A(TBBPA)和十溴二苯醚(BDE209)的分析方法。分别以15μL甲苯-正辛醇(1∶1,体积比)和甲苯-乙酸乙酯(1∶1,体积比)有... 该文建立了氮掺杂碳纳米管(N-CNTs)增强中空纤维液相微萃取(HF-LPME)结合高效液相色谱(HPLC)同时检测生物样品中四溴双酚A(TBBPA)和十溴二苯醚(BDE209)的分析方法。分别以15μL甲苯-正辛醇(1∶1,体积比)和甲苯-乙酸乙酯(1∶1,体积比)有机溶剂对血清和尿样在常温下萃取10 min,在萃取过程中,中空纤维膜排阻样品中蛋白质,避免了大分子物质的干扰。目标化合物经Kjnetex EVO C_(18)(2.1 mm×150 mm,5μm)色谱柱分离,以水和乙腈为流动相进行梯度洗脱。考察了不同萃取溶剂、提取时间、氮掺杂碳纳米管用量、样品pH值、搅拌速率、NaCl浓度和解吸溶剂种类对目标化合物萃取效率的影响。结果表明,在最佳条件下,TBBPA和BDE209分别在2~200 ng/mL和10~200 ng/mL范围内具有良好的线性关系,相关系数(r^(2))不小于0.995,检出限分别为0.375 ng/mL和2.8 ng/mL,定量下限分别为9.4 ng/mL和1.25 ng/mL。在3个加标水平下,目标分析物的回收率为84.5%~114%,相对标准偏差为1.4%~7.5%。该方法在富集TBBPA和BDE209的同时可去除生物样品中的蛋白质,方法简单、快速、灵敏度高、重复性好、绿色环保,适用于复杂基质中TBBPA和BDE209的检测。 展开更多
关键词 氮掺杂碳纳米管(n-cnts) 中空纤维液相微萃取(HF-LPME) 溴系阻燃剂 高效液相色谱法(HPLC)
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Thermal pyrolysis of Si@ZIF-67 into Si@N-doped CNTs towards highly stable lithium storage 被引量:2
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作者 Dun Jin Xianfeng Yang +7 位作者 Yuqing Ou Mumin Rao Yaotang Zhong Guangmin Zhou Daiqi Ye Yongcai Qiu Yuping Wu Weishan Li 《Science Bulletin》 SCIE EI CSCD 2020年第6期452-459,M0003,共9页
Silicon is attracting considerable attention as an active anode material for advanced lithium-ion batteries due to its ultrahigh theoretical capacity. However, the reversible utilization of silicon-based anode materia... Silicon is attracting considerable attention as an active anode material for advanced lithium-ion batteries due to its ultrahigh theoretical capacity. However, the reversible utilization of silicon-based anode materials is still hindered by the rapid capacity decay, as a consequence of the huge volume change of silicon during cycling. Herein, we use a Co-zeolitic imidazole framework(ZIF-67) to prepare silicon-wrapped nitrogen-doped carbon nanotubes(Si@N-doped CNTs) by controllable thermal pyrolysis. The asprepared nanocomposites can effectively prevent pulverization and accommodate volume fluctuations of silicon during cycling. It can deliver a highly reversible capacity of 1100 m Ah g-1 even after 750 cycles at a current density of 1000 m A g-1. As confirmed by an in situ transmission electron microscopy experiment, the remarkable electrochemical performance of Si@N-doped CNTs is attributed to the high electronic conductivity and flexibility of cross-linked N-doped CNTs network as a cushion to mitigate the mechanical stress and volume expansion. Furthermore, a full cell consisting of Si@N-doped CNTs anode and Li Fe PO4 cathode delivers a high reversible capacity of 1264 m Ah g-1 and exhibits good cycling stability(>85% capacity retention) over 140 cycles at 1/4 C(1 C = 4000 m A g-1) rate. 展开更多
关键词 n-DOPED cnts In SITU growth Silicon nanoparticles Lithium storage CYCLIC stability
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