T. H. Elagib, N. A. Kabbashi, M. Alam, M. Al-Khatib, M. Mirghani, E. Hassan
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As a result of the physicochemical characterization, many defects and a porous structure were noted, along with the successful insertion of nitrogen and sulfur into the carbon nanotube was confirmed. According to the cyclic voltammetry tests for the dual-doped samples in alkaline conditions, the D-CNT2 catalyst exhibited onset potentials of -0.30 V higher than the -0.37 V observed for the D-CNT3 catalyst. This indicates enhanced oxygen–reduction reaction due to the synergistic effects of the heteroatoms in the structure and the presence of chemically active sites. Moreover, the outstanding specific capacitance of the D-CNT2 catalyst (214.12 F g-1 at scanning rates of 1 mV s-1) reflects the effective porosity of the proposed catalyst. 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引用次数: 0
摘要
近十年来,由于对电化学储能的需求不断增加,各种用于超级电容器和可充电电池的新型电极和催化材料得到了发展。这些催化剂材料的结构和特性对装置的性能有很大的影响。为了降低与电化学系统相关的成本,可以采用无金属的电化学系统催化材料。在本研究中,采用简单、经济的单步水热法合成了由氮(N)和硫(S)双掺杂多壁碳纳米管组成的无金属催化剂。碳纳米管作为碳源,l-半胱氨酸和硫脲作为掺杂元素。通过物理化学表征,发现了许多缺陷和多孔结构,并证实了氮和硫成功插入碳纳米管。根据双掺杂样品在碱性条件下的循环伏安测试,D-CNT2催化剂的起始电位比D-CNT3催化剂的-0.37 V高-0.30 V。这表明由于结构中杂原子的协同作用和化学活性位点的存在,氧还原反应增强。此外,D-CNT2催化剂出色的比电容(在扫描速率为1 mV s-1时为214.12 F -1)反映了所提出的催化剂的有效孔隙率。这些发现突出了N/S双掺杂碳纳米管在电催化应用中的潜力,有助于高效的能量转换。
The performance of heteroatom-doped carbon nanotubes synthesized via a hydrothermal method on the oxygen reduction reaction and specific capacitance
Due to the increasing demand for electrochemical energy storage, various novel electrode and catalysis materials for supercapacitors and rechargeable batteries have developed over the last decade. The structure and characteristics of these catalyst materials have a major effect on the device's performance. In order to lower the costs associated with electrochemical systems, electrochemical systems, metal-free catalysis materials can be employed. In this study, metal-free catalysts composed of nitrogen (N) and sulfur (S) dual-doped multi-walled carbon nanotubes were synthesized using a straightforward and cost-effective single-step hydrothermal method. Carbon nanotubes served as the carbon source, while l-cysteine amino acid and thiourea acted as doping elements. As a result of the physicochemical characterization, many defects and a porous structure were noted, along with the successful insertion of nitrogen and sulfur into the carbon nanotube was confirmed. According to the cyclic voltammetry tests for the dual-doped samples in alkaline conditions, the D-CNT2 catalyst exhibited onset potentials of -0.30 V higher than the -0.37 V observed for the D-CNT3 catalyst. This indicates enhanced oxygen–reduction reaction due to the synergistic effects of the heteroatoms in the structure and the presence of chemically active sites. Moreover, the outstanding specific capacitance of the D-CNT2 catalyst (214.12 F g-1 at scanning rates of 1 mV s-1) reflects the effective porosity of the proposed catalyst. These findings highlight the potential of N/S dual–doped carbon nanotubes for electrocatalytic applications, contributing to efficient energy conversion.