TY - JOUR
T1 - Eco-friendly synthesis of vanadium metal-organic frameworks from gasification waste for wearable Zn-ion batteries
AU - Yang, Jie
AU - Tian, Hailin
AU - Li, Yang
AU - Li, He
AU - Li, Shuo
AU - Yang, Haitao
AU - Ding, Meng
AU - Wang, Xiaonan
AU - Chen, Po Yen
N1 - Funding Information:
This work was supported by the National Research Foundation, Prime Minister's Office, Singapore under its Campus for Research Excellence and Technological Enterprise (CREATE) Program. The authors acknowledge the financial support provided by the Start-Up Fund of University of Maryland, College Park (KFS No.: 2957431 to P.-Y. Chen). Funding for this research was provided by MOST-AFOSR Taiwan Topological and Nanostructured Materials Grant under Grant No. FA2386-21-1-4065 (KFS No.: 5284212 to P.-Y. Chen) and Energy Innovation Seed Grant from Maryland Energy Innovation Institute (MEI^2) (KFS No.: 2957597 to P.-Y. Chen). H. Tian acknowledges the suppots from Guangdong Introducing Innovative and Entrepreneurial Teams (2019ZT08L213). J. Yang acknowledges the supports from the the Fundamental Research Funds for the Central Universities, conducted at Tongji University.
Publisher Copyright:
© 2022
PY - 2022/12
Y1 - 2022/12
N2 - To meet the ever-increasing energy storage demands, there is an urgent need for developing next-generation batteries with high energy densities from an eco-friendly and sustainable resource. Vanadium metal-organic frameworks (V-MOFs) are regarded as important electrode materials for aqueous Zn-ion batteries (ZIBs) due to their large specific surface areas, synthetic tenability, and high theoretical capacities. However, V-MOFs usually suffer from vanadium-induced toxicity and poor cation diffusivities, limiting their practical applications in ZIBs. Herein, an eco-friendly strategy is demonstrated to extract toxic vanadium from gasification waste to synthesize various vanadium oxides, which are the essential precursors for V-MOFs. By screening 11 V-MOF candidates through molecular dynamics simulation, MIL-47 was selected for the waste-derived synthesis because of its facile Zn2+ de-/intercalation. The waste-derived MIL-47 with cone-like microstructures is directly grown on a carbon nanotube fiber (w-MIL-47@CNT fiber), which can be used as the binder-free cathode for a fiber-shaped ZIB. Our fiber-shaped ZIB delivers high-rate performance (81.0% of capacity retention after 50-time current density increase), an ultrahigh stack volumetric energy density of 82.3 mWh cm–3, superior cycling performance over 2000 cycles (88.5% retention), and high mechanical stability, all of which meet wearable and portable battery requirements. Finally, life cycle assessments are performed to evaluate the environmental impact of each synthesis/fabrication step across 17 different categories, providing valuable optimization guidelines for producing ZIBs from gasification waste.
AB - To meet the ever-increasing energy storage demands, there is an urgent need for developing next-generation batteries with high energy densities from an eco-friendly and sustainable resource. Vanadium metal-organic frameworks (V-MOFs) are regarded as important electrode materials for aqueous Zn-ion batteries (ZIBs) due to their large specific surface areas, synthetic tenability, and high theoretical capacities. However, V-MOFs usually suffer from vanadium-induced toxicity and poor cation diffusivities, limiting their practical applications in ZIBs. Herein, an eco-friendly strategy is demonstrated to extract toxic vanadium from gasification waste to synthesize various vanadium oxides, which are the essential precursors for V-MOFs. By screening 11 V-MOF candidates through molecular dynamics simulation, MIL-47 was selected for the waste-derived synthesis because of its facile Zn2+ de-/intercalation. The waste-derived MIL-47 with cone-like microstructures is directly grown on a carbon nanotube fiber (w-MIL-47@CNT fiber), which can be used as the binder-free cathode for a fiber-shaped ZIB. Our fiber-shaped ZIB delivers high-rate performance (81.0% of capacity retention after 50-time current density increase), an ultrahigh stack volumetric energy density of 82.3 mWh cm–3, superior cycling performance over 2000 cycles (88.5% retention), and high mechanical stability, all of which meet wearable and portable battery requirements. Finally, life cycle assessments are performed to evaluate the environmental impact of each synthesis/fabrication step across 17 different categories, providing valuable optimization guidelines for producing ZIBs from gasification waste.
KW - Eco-friendly synthesis
KW - Fiber-shaped Zn-ion battery
KW - High volumetric energy density
KW - Life cycle analysis
KW - Vanadium metal-organic frameworks
UR - http://www.scopus.com/inward/record.url?scp=85138146546&partnerID=8YFLogxK
U2 - 10.1016/j.ensm.2022.09.009
DO - 10.1016/j.ensm.2022.09.009
M3 - Article
AN - SCOPUS:85138146546
SN - 2405-8297
VL - 53
SP - 352
EP - 362
JO - Energy Storage Materials
JF - Energy Storage Materials
ER -