Economic and Environmental Sustainability of Biogenic Synthesis of Indium-Graphitic Material from Electronic Waste

被引:2
作者
Upadhyay, Astha [1 ]
Rowles, Lewis S. [2 ]
Tehrani, Rouzbeh [1 ]
机构
[1] Temple Univ, Dept Civil & Environm Engn, Philadelphia, PA 19122 USA
[2] Georgia Southern Univ, Dept Civil Engn & Construct, Statesboro, GA 30458 USA
关键词
metal-graphitic composite; phytoextraction; circular economy; indium recovery; graphitesynthesis; life cycle assessment (LCA); technoeconomicanalysis(TEA); PYROLYSIS; RECOVERY;
D O I
10.1021/acssuschemeng.3c07275
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Due to the escalating concern over the increasing generation of electronic waste (e-waste), legislative measures, and the inherent value of critical metals contained within e-waste, recycling has emerged as a potentially viable business opportunity. Previously, phytoextraction for sustainable resource recovery of critical metals was proposed, and the metal-incorporated biomass was translated into a carbon-rich precursor for graphitic material synthesis. Experimental findings suggest that the phytoextraction process has lower chemical consumption and reduced energy requirements than pyrometallurgical and hydrometallurgical methods. To assess, quantify, and compare the sustainability of this combined phytoextraction and graphitization methodology, technoeconomic analysis and life cycle assessment were conducted. The financial viability and environmental implications of this process were studied in two scenarios. In the first scenario, indium recovery from an LCD screen slurry followed by pyrolysis for indium-graphitic material synthesis was evaluated. The second scenario, derived from the first, incorporated modifications that reduced the median costs by 28%. Both scenarios achieved a 38.8% reduction in median global warming potential per kilogram of graphite compared with industrial graphite synthesis. Overall, the results demonstrate that biomass-based resource recovery and graphite synthesis can provide sustainable alternatives while recovering critical metals and synthesizing value-added products.
引用
收藏
页码:4061 / 4069
页数:9
相关论文
共 22 条
[1]  
[Anonymous], 2019, A New Circular Vision for Electronics: Time for a Global Reboot
[2]   Modelling the correlations of e-waste quantity with economic increase [J].
Awasthi, Abhishek Kumar ;
Cucchiella, Federica ;
D'Adamo, Idiano ;
Li, Jinhui ;
Rosa, Paolo ;
Terzi, Sergio ;
Wei, Guoyin ;
Zeng, Xianlai .
SCIENCE OF THE TOTAL ENVIRONMENT, 2018, 613 :46-53
[3]   Effect of initial moisture content on the yields of oily products from pyrolysis of biomass [J].
Demirbas, A .
JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2004, 71 (02) :803-815
[4]   Leaching of indium from obsolete liquid crystal displays: Comparing grinding with electrical disintegration in context of LCA [J].
Dodbiba, Gjergj ;
Nagai, Hiroki ;
Wang, Li Pang ;
Okaya, Katsunori ;
Fujita, Toyohisa .
WASTE MANAGEMENT, 2012, 32 (10) :1937-1944
[5]   Carbon footprint assessment of recycling technologies for rare earth elements: A case study of recycling yttrium and europium from phosphor [J].
Hu, Allen H. ;
Kuo, Chien-Hung ;
Huang, Lance H. ;
Su, Chao-Chin .
WASTE MANAGEMENT, 2017, 60 :765-774
[6]   Recovery of metals and nonmetals from electronic waste by physical and chemical recycling processes [J].
Kaya, Muammer .
WASTE MANAGEMENT, 2016, 57 :64-90
[7]   Electronic waste management approaches: An overview [J].
Kiddee, Peeranart ;
Naidu, Ravi ;
Wong, Ming H. .
WASTE MANAGEMENT, 2013, 33 (05) :1237-1250
[8]   E-waste: An overview on generation, collection, legislation and recycling practices [J].
Kumar, Amit ;
Holuszko, Maria ;
Romano Espinosa, Denise Crocce .
RESOURCES CONSERVATION AND RECYCLING, 2017, 122 :32-42
[9]  
Li L., 2013, New and Future Developments in Catalysis, P173, DOI [DOI 10.1016/B978-0-444-53878-9.00009-6, 10.1016/B978-0-444-53878- 9.00009-6]
[10]  
Li YL, 2022, ENVIRON SCI-WAT RES, V8, P2439, DOI [10.1039/d2ew00431c, 10.1039/D2EW00431C]