在Saccharomyces cerevisiae微生物燃料电池中,将生物化学与电化学输出相结合
Marcelinus Christwardana1, Muhammad Fahrul Riza2, Purbowatiningrum Ria Sarjono2
1Department of Chemistry, Faculty of Science and Mathematics, Diponegoro University, Semarang 50275, Indonesia; Master Program of Energy, School of Postgraduate Studies, Diponegoro University, Semarang 50241, Indonesia; Research Collaboration Center for Electrochemistry, BRIN - Diponegoro University, Semarang 50275, Indonesia.
优化源,如,可以增强Saccharomyces cerevisiae微生物燃料电池 (MFC) 中的电子转移. 这提高了可持续生物能源的电能生产和功率密度.
科学领域:
- 生物技术是生物技术.
- 电化学 电化学 电化学
- 可再生能源可再生能源是可再生能源.
背景情况:
- 微生物燃料电池 (MFC) 使用微生物代谢将有机物转化为电力.
- 麦芽是一种有前途的,不致病的生物催化剂MFC,但其电子转移效率需要改进.
研究的目的:
- 研究不同源 (,,BSA) 和度对基于Saccharomyces cerevisiae的MFCs电化学性能的影响.
- 确定最佳的气条件,以改善微生物电子转移和能源产生.
主要方法:
- 使用半细胞分析评估源影响 (循环电压测量,速率决定步骤评估).
- 进行了全细胞实验,以测量输出电压和功率密度.
- 利用扫描电子显微镜 (SEM) 来分析生物膜的形成.
主要成果:
- 佩在5mg/mL的剂量下产生了最高的电子转移速率常数 (1.61 ± 0.285s-1).
- 使用 (5 mg/mL) 实现了最大电压 (0.132 V) 和功率密度 (46.6 mW/m2).
- 增加的度与增强的生物膜形成和电化学活性相关.
结论:
- 优化源显著提高了微生物电子转移和酵母基MFCs的能量产量.
- 佩普成为提高MFC性能的高效源.
- 这项研究为推进基于酵母的MFC技术提供了战略方法.
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