Innovative Application of Biomass Material Energy Battery

Authors

  • Zixuan Deng

DOI:

https://doi.org/10.54097/fbem.v12i2.14777

Keywords:

Biomass materials, Energy batteries, Electrode materials.

Abstract

This article provides an overview of the innovative research progress in the application of biomass materials in energy batteries. Biomass, as a plentiful renewable resource, has shown significant potential in various aspects of batteries, including electrodes, electrolytes, and packaging. Currently, various biomass electrode and electrolyte materials have made important advancements, leading to the development of various types of battery prototypes. Biomass batteries exhibit high specific capacity, good cycling stability, and cost-effectiveness advantages. However, widespread application still faces technical challenges such as cycle life. In the future, there is a need to strengthen basic research and technological breakthroughs, develop efficient manufacturing techniques, establish sustainable production systems, and promote the industrialization of biomass batteries. Biomass batteries have a promising future and will become an important choice for renewable energy storage.

Downloads

Download data is not yet available.

References

Kim H J, Park H S, H yun MS, et al. A mediator-less microbial fuel cell using a metal-reducing bacterium, Shewanella putrefaciens. Enzyme Microbio Technol. 2002, 30, 145-152.

Remer C E, Tender L M, Fertig S, et al. Harvesting energy from the marine sediment-water interface. Environ Sci Techno. 2001, 35, 192-195.

Lian Jing, Zhu Xueyuan, Li Haoran, et al. Current research status and application prospects of direct microbial fuel cells. Science Technology & Engineering, 2005, 5(22), 17-19

Bookin M, Bruce E L. Continuous electricity generation from domestic wastewater and organic substrates in a flat plate microbial fuel cell. Environ Sci Technol. 2004, 38, 5809-5814.

Chaudhuri S K, Lovley D R. Electricity generation by direct oxidation of glucose in mediatorless microbial fuel cells. Nature Biotech. 2003, 21(10), 1229-1232.

Park, D.H, Zeikus, J.G. Impact of electrode composition on electricity generation in a single-compartment fuel cell using Shewanella putrefaciens. Appl. Microbiol Biotechnol. 2002, 59, 58-61.

Zhang Qin, Zhang Shanshan, Wang Xianxian. Advantages of microbial production of renewable bioenergy. Fermentation Technology Communication, 2011, 40(03), 27-30. DOI: 10.16774/j.cnki.issn.1674-2214.2011.03.001.

Yap K L,Ho L N,Ong S A,et al. Crucial roles of aeration and catalyst on caffeine removal and bioelectricity generation in a double chambered microbial fuel cell integrated electrocatalytic process [J]. Journal of Environmental Chemical Engineering, 2021, 9(1): 104636.

Lay C H,Kokko M E,Puhakka J A. Power generation in fed-batch and continuous up-flow microbial fuel cell from synthetic wastewater[J]. Energy, 2015, 91: 235- 241.

Fraiwan A,Mukherjee S,Sundermier S,et al. A paper-based microbial fuel cell: Instant battery for disposable diagnostic devices[J]. Biosensors and Bioelectronics,2013,49: 410-414.

Liu H,Logan B E. Electricity generation using an aircathode single chamber microbial fuel cell in the presence and absence of a proton exchange membrane[J]. Energy & Environmental Science, 2004, 38: 4040- 4046.

Jimenez I M,Brinson P,Greenman J,et al. Electronic faucet powered by low cost ceramic microbial fuel cells treating urine[J]. Journal of Power Sources, 2021, 506: 230004.

Alipanahi R,Rahimnejad M,Najafpour G. Improvement of sediment microbial fuel cell performances by design and application of power management systems[J]. International Journal of Hydrogen Energy, 2019 , 44(31): 16965-16975.

Yousefi R,Mardanpour M M,Yaghmaei S. Fabrication of the macro and micro-scale microbial fuel cells to monitor oxalate biodegradation in human urine[J]. Scientific Reports, 2021, 11(1): 14346-14358.

Downloads

Published

06-12-2023

Issue

Section

Articles

How to Cite

Deng, Z. (2023). Innovative Application of Biomass Material Energy Battery. Frontiers in Business, Economics and Management, 12(2), 145-148. https://doi.org/10.54097/fbem.v12i2.14777