TY - JOUR
T1 - The overlooked promotion of electricity generation by electrochemically active bacteria using chitosan
AU - Yi, Xuemei
AU - Wang, Baoguo
AU - Pan, Yue
AU - Luo, Aiqin
AU - Yu, Dengbin
AU - Yi, Yue
AU - Luo, Xiaojun
AU - Mai, Bixian
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/12/1
Y1 - 2026/12/1
N2 - The modification of electrodes with nanomaterials improves the adhesion of electrochemically active bacteria (EAB) and their generation of electricity. Although chitosan (CTS) is the most commonly used nanomaterial dispersant, its effects on EAB remain unclear. This study systematically investigates the effects of electrodeposited CTS on electricity production by EAB and elucidates the underlying biological mechanisms. The results demonstrate that EAB generates 14.19 times more electricity with a modified carbon cloth electrode containing electrodeposited CTS compared with an unmodified electrode. This enhancement of electricity production is primarily owing to slight improvements in conductivity and obvious increases in biomass. The relationship between the CTS electrodeposition time and enhancement of electricity exhibits an inverted U-shape, with an optimal time of 10 min. When the electrodeposition time is under 10 min, the content of amino groups is insufficient, which fails to promote the adhesion of EAB. In contrast, prolonged electrodeposition transforms amino groups into pyridinic nitrogen, which weakens the adhesion of EAB. Future studies on electrode modification for use by EAB should pay more attention to the addition of CTS, and distinguish the contributions of CTS and nanomaterials to the enhancement of electricity.
AB - The modification of electrodes with nanomaterials improves the adhesion of electrochemically active bacteria (EAB) and their generation of electricity. Although chitosan (CTS) is the most commonly used nanomaterial dispersant, its effects on EAB remain unclear. This study systematically investigates the effects of electrodeposited CTS on electricity production by EAB and elucidates the underlying biological mechanisms. The results demonstrate that EAB generates 14.19 times more electricity with a modified carbon cloth electrode containing electrodeposited CTS compared with an unmodified electrode. This enhancement of electricity production is primarily owing to slight improvements in conductivity and obvious increases in biomass. The relationship between the CTS electrodeposition time and enhancement of electricity exhibits an inverted U-shape, with an optimal time of 10 min. When the electrodeposition time is under 10 min, the content of amino groups is insufficient, which fails to promote the adhesion of EAB. In contrast, prolonged electrodeposition transforms amino groups into pyridinic nitrogen, which weakens the adhesion of EAB. Future studies on electrode modification for use by EAB should pay more attention to the addition of CTS, and distinguish the contributions of CTS and nanomaterials to the enhancement of electricity.
KW - Electrochemically active bacteria
KW - Electrode modification
KW - Electrodeposited chitosan
KW - Microbial electrochemical system
KW - Shewanella
UR - https://www.scopus.com/pages/publications/105041227281
U2 - 10.1016/j.talanta.2026.130110
DO - 10.1016/j.talanta.2026.130110
M3 - Article
AN - SCOPUS:105041227281
SN - 0039-9140
VL - 310
JO - Talanta
JF - Talanta
M1 - 130110
ER -