An investigation of chemical oxidative polymerization and life cycle assessment of graphene oxide-grafted polyaniline nanocomposite for improved electrocatalytic performance

被引:4
|
作者
Shekhar, Shashank [1 ]
Sharma, Reetu [1 ]
Gautam, Sanjeev [1 ]
Khan, Amarendra Mohan [1 ]
Sarkar, Anjana [1 ]
Singh, Rahul [2 ]
Chauhan, Krishan Dutt [2 ]
Sharma, Bhasha [3 ]
机构
[1] Netaji Subhas Univ Technol, Dept Chem, Delhi, India
[2] Univ Delhi, Bhaskaracharya Coll Appl Sci, Dept Polymer Sci & Technol, Delhi, India
[3] Univ Delhi, Shivaji Coll, Dept Chem, Delhi, India
关键词
Supercapacitors; Polyaniline; Graphene oxide; Nanocomposite; LCA; ELECTRODE; NANOSTRUCTURES; PANI/GO;
D O I
10.1007/s00289-023-04947-7
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
With escalating apprehension contemplating anthropogenic climate change and exhaustion of fossil fuels, the development of sustainable energy storage devices has become exigent and compelling. Supercapacitors are observed as budding alternatives for the augmentation and replacement of batteries because of their skyscraping power density and long life cycle. Polyaniline (PANI), attributable to its low cost, ease of synthesis, environmental stability, electroactivity, queer doping/de-doping chemistry, and high theoretical pseudocapacitance, has emerged as sterling electrode material for supercapacitor applications. Howbeit, a hindrance to cycling life and rate-capability ascribable to the large change in volume and sluggish redox reactions during the charging-discharging process restricts its practical use. The amalgamation of PANI with graphene oxide (GO) has attracted a plethora of interest as it instigates novel properties and enhanced performance. The SEM micrographs suggested that GO nanoparticles were well dispersed in the polymer matrix. Higher thermal stability was observed for GO-PANI contrary to pure PANI which was attributable to the shielding effect from graphene substrates. The inclusion of 10% GO content revealed better conductivity. Cyclic voltammetry studies elucidated the highest current value and electrocatalytic properties were found to be diffusion controlled. Life cycle assessment studies were performed to assess the environmental performance of the prepared nanocomposites. The LCA studies highlighted the energy-intensive nature of the fabrication process and toxic nature of chemicals in use suggesting the requirement of potential alternatives when upscaling the fabrication processes for industrial-scale manufacturing.
引用
收藏
页码:5135 / 5153
页数:19
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