Chinese Journal of Applied Chemistry ›› 2026, Vol. 43 ›› Issue (2): 275-285.DOI: 10.19894/j.issn.1000-0518.240327
• Chemistry Teaching and Experiment Innovation • Previous Articles
Meng ZHANG1, Hao-Lun WANG1,2, Bo QUAN1, Xing ZHENG1, Ying-Jun PIAO1, Cheng-Jin AN1(
)
Received:2024-10-19
Accepted:2025-11-22
Published:2026-02-01
Online:2026-03-06
Contact:
Cheng-Jin AN
About author:chengjin@ybu.edu.cnSupported by:CLC Number:
Meng ZHANG, Hao-Lun WANG, Bo QUAN, Xing ZHENG, Ying-Jun PIAO, Cheng-Jin AN. Teaching of Nanocomposite Materials: Preparation and Performance Study of Ni-Cu Sulfide/Polyaniline Composite Electrodes[J]. Chinese Journal of Applied Chemistry, 2026, 43(2): 275-285.
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URL: http://yyhx.ciac.jl.cn/EN/10.19894/j.issn.1000-0518.240327
Fig.1 (A) Schematic illustration of the formation processes of Ni17CuS20/PANI nanostructures on the carbon cloth; (B) Optical image of carbon cloth (CC); Static contact angle measurements for (C) Ni17CuS20 and (D) Ni17CuS20/PANI
Fig.2 SEM images of CC (A); SEM images of (B) NiCu(CO3)(OH)2, (C) Ni17CuS20 nanosheets and (D) Ni17CuS20/PANI; (E) Elemental mapping images of Ni17CuS20/PANI
Fig.4 (A) CV curves of NiCu(CO3)(OH)2, Ni17CuS20 and Ni17CuS20/PANI at 50 mV/s; (B) CV curves and (C) GCD curves of Ni17CuS20/PANI at different scan rates and current densities, respectively; (D) Corresponding specific capacitances at different current densities; (E) EIS spectrum of NiCu(CO3)(OH)2, Ni17CuS20 and Ni17CuS20/PANI; (F) Energy storage characteristics of Ni17CuS20/PANI
Fig.5 (A) Schematic illustration of the Ni17CuS20/PANI//AC ASC configuration; (B) CV curves of AC and Ni17CuS20/PANI at a scan rate of 50 mV/s; CV curves of the ASC at different (C) potential windows and (D) scan rates; (E) GCD curves of the ASC at different current densities; (F) Corresponding speci?c capacitances at different current densities; (G) Relationship between the square root of scan rate and the cathodic and anodic peak currents of Ni17CuS20/PANI assembled in ASC; (H) Cycling performance of the ASC at a current density of 5 A/g for 5000 cycles; (I) Ragone plot (energy density vs. power density) of the ASC
| 教学环节 | 实验的具体内容及学时数(h) | 总学时数/h |
|---|---|---|
| 教师讲解 | 1.新能源器件发展趋势与超级电容器原理(0.1 h) 2.纳米复合材料设计策略与协同效应(0.2 h) 3.水热合成与电化学沉积技术原理(0.2 h) | 0.5 |
| 学生实验操作 | 1.NiCu(CO3)(OH)2纳米材料制备(6.0 h) 2.Ni17CuS20纳米材料制备(4.0 h) 3.PANI电化学沉积(1.0 h) | 11.0 |
| 教师演示与分析 | 1.SEM、XPS表征技术操作示范(1.0 h) 2.电化学工作站数据分析(1.0 h) | 2.0 |
| 结果讨论与总结 | 1.形貌与结构分析(1.0 h) 2.电化学性能对比与机理讨论(1.0 h) 3.柔性器件设计与应用展望(0.5 h) | 2.5 |
Table 1 Teaching and experimentation schedule
| 教学环节 | 实验的具体内容及学时数(h) | 总学时数/h |
|---|---|---|
| 教师讲解 | 1.新能源器件发展趋势与超级电容器原理(0.1 h) 2.纳米复合材料设计策略与协同效应(0.2 h) 3.水热合成与电化学沉积技术原理(0.2 h) | 0.5 |
| 学生实验操作 | 1.NiCu(CO3)(OH)2纳米材料制备(6.0 h) 2.Ni17CuS20纳米材料制备(4.0 h) 3.PANI电化学沉积(1.0 h) | 11.0 |
| 教师演示与分析 | 1.SEM、XPS表征技术操作示范(1.0 h) 2.电化学工作站数据分析(1.0 h) | 2.0 |
| 结果讨论与总结 | 1.形貌与结构分析(1.0 h) 2.电化学性能对比与机理讨论(1.0 h) 3.柔性器件设计与应用展望(0.5 h) | 2.5 |
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