electron hopping
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2022 ◽  
Vol 128 (2) ◽  
Author(s):  
Liang Li ◽  
Tengfei Huang ◽  
Pengfei Lan ◽  
Jiapeng Li ◽  
Yinfu Zhang ◽  
...  

2021 ◽  
Author(s):  
Grace W Chong ◽  
Sahand Pirbadian ◽  
Yunke Zhao ◽  
Lori A Zacharoff ◽  
Fabien Pinaud ◽  
...  

Using a series of multiheme cytochromes, the metal-reducing bacterium Shewanella oneidensis MR-1 can perform extracellular electron transfer (EET) to respire redox-active surfaces, including minerals and electrodes outside the cell. While the role of multiheme cytochromes in transporting electrons across the cell wall is well established, these cytochromes were also recently found to facilitate long-distance (micrometer-scale) redox conduction along outer membranes and across multiple cells bridging electrodes. Recent studies proposed that long-distance conduction arises from the interplay of electron hopping and cytochrome diffusion, which allows collisions and electron exchange between cytochromes along membranes. However, the diffusive dynamics of the multiheme cytochromes have never been observed or quantified in vivo, making it difficult to assess their hypothesized contribution to the collision-exchange mechanism. Here we use quantum dot labeling, total internal reflection fluorescence microscopy, and single-particle tracking to quantify the lateral diffusive dynamics of the outer membrane-associated decaheme cytochromes MtrC and OmcA, two key components of EET in S. oneidensis. We observe confined diffusion behavior for both quantum dot-labeled MtrC and OmcA along cell surfaces (diffusion coefficients DMtrC = 0.0192 ± 0.0018 μm2/s, DOmcA = 0.0125 ± 0.0024 μm2/s) and the membrane extensions thought to function as bacterial nanowires. We find that these dynamics can trace a path for electron transport via overlap of cytochrome trajectories, consistent with the long-distance conduction mechanism. The measured dynamics inform kinetic Monte Carlo simulations that combine direct electron hopping and redox molecule diffusion, revealing significant electron transport rates along cells and membrane nanowires.


Author(s):  
Suchit Kumar Jena ◽  
Deep Chandra Joshi ◽  
Sayandeep Ghosh ◽  
Kiran Dasari ◽  
Subhash Thota

2021 ◽  
Vol 522 ◽  
pp. 167564
Author(s):  
Raja Das ◽  
Vijaysankar Kalappattil ◽  
Manh-Huong Phan ◽  
Hariharan Srikanth

RSC Advances ◽  
2021 ◽  
Vol 11 (31) ◽  
pp. 18860-18869
Author(s):  
Margot Jacquet ◽  
Małgorzata Kiliszek ◽  
Silvio Osella ◽  
Miriam Izzo ◽  
Jarosław Sar ◽  
...  

Molecular mechanism of DET between graphene and cytochrome c depends on the metal in the bio-organic interface: Co enhances the cathodic current via electron hopping from graphene to haem, whereas Ni exerts the opposite effect via tunnelling.


Author(s):  
Dandan Gao ◽  
Jiyang Xie ◽  
Jian Wang ◽  
Wanbiao Hu

It has been widely accepted that the localized electron hopping induces colossal permittivity in the bulk of transition-metal-based materials. However, the mechanism and the control of electron hopping process remain...


Author(s):  
R. Ahmed ◽  
J. Wang ◽  
R.J. Si ◽  
S. ur Rehman ◽  
T. Li ◽  
...  
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