517
Views
5
CrossRef citations to date
0
Altmetric
Research Article

Semiconducting Minerals Participated Extracellular Electron Transfer Process in High-Altitude Red Soil from Gansu, China

, , , , , , & show all
Pages 905-913 | Received 12 Jul 2021, Accepted 02 Sep 2021, Published online: 23 Sep 2021

References

  • Chang B, Park S. 2010. Electrochemical impedance spectroscopy. Annu Rev Anal Chem 3:207–229.
  • Cheng H, Jing Z, Yang L, Lu A, Ren G, Liu J. 2021. Sunlight-triggered synergy of hematite and Shewanella oneidensis MR- 1 in Cr (VI) removal. Geochim Cosmochim A 305:19–32.
  • Dhami NK, Reddy MS, Mukherjee A. 2013. Biomineralization of calcium carbonates and their engineered applications: a review. Front Microbiol 4:314.
  • Fang H, Oberoi AS, He Z, Khanal SK, Lu H. 2021. Ciprofloxacin-degrading Paraclostridium sp. isolated from sulfate-reducing bacteria-enriched sludge: optimization and mechanism. Water Res 191(7):116808.
  • Guo J, Suastegui M, Sakimoto KK, Moody VM, Xiao G, Nocera DG, Joshi NS. 2018. Light-driven fine chemical production in yeast biohybrids. Science 362(6416):813–816.
  • He JZ, Zheng Y, Chen CR, He YQ, Zhang LM. 2008. Microbial composition and diversity of an upland red soil under long-term fertilization treatments as revealed by culture-dependent and culture-independent approaches. J Soils Sediments 8(5):349–358.
  • He Z, Mansfeld F. 2009. Exploring the use of electrochemical impedance spectroscopy (EIS) in microbial fuel cell studies. Energy Environ Sci 2(2):215–219.
  • Hsu Y, Chen Y, Lin Y, Chen L, Chen K. 2012. Birnessite-type manganese oxides nanosheets with hole acceptor assisted photoelectrochemical activity in response to visible light. J Mater Chem 22(6):2733–2739.
  • Jiang Z, Wang B, Yu JC, Wang J, An T, Zhao H, Li H, Yuan S, Wong PK. 2018. AglnS2/In2S3 heterostructure sensitization of Escherichia coli for sustainable hydrogen production. Nano Energy 46:234–240.
  • Jung S-H, Ahn Y-H, Oh S-E, Lee J-H, Cho K-T, Kim Y-J, Kim M-W, Shim J-M, Kang M-S. 2012. Impedance and thermodynamic analysis of bioanode, abiotic anode, and riboflavin-amended anode in microbial fuel cells. Bull Korean Chem Soc 33(10):3349–3354.
  • Liu D, Na Y, Papineau D, Fan QG, Wang HM, Qiu X, She ZB, Luo GM. 2019. The catalytic role of planktonic aerobic heterotrophic bacteria in protodolomite formation: results from Lake Jibuhulangtu Nuur, Inner Mongolia, China. Geochim Cosmochim Acta 263:31–49.
  • Liu D, Wang H, Dong HL, Qiu X, Dong XZ, Cravotta CA III, 2011. Mineral transformations associated with goethite reduction by Methanosarcina barkeri. Chem Geol 288(1–2):53–60.
  • Liu J, Liu X, Ding H, Ren G, Sun Y, Liu Y, Ji X, Ma LZ, Li Y, Lu A. 2021. Enhanced mechanism of extracellular electron transfer between semiconducting minerals anatase and Pseudomonas aeruginosa PAO1 in euphotic zone. Bioelectrochemistry 141:107849.
  • Liu Y, Sun Y, Ding H, Ren G, Lu A, Li Y. 2020. Photoelectron shaping marine microbial compositional and metabolic variation in the photic zone around estuary and offshore area of Yellow Sea, China. Geomicrobiol J 37(8):716–725.
  • Liu H, Hu B, Zhang L, Wang YS. 2016. Spatiotemporal characteristics of ultraviolet radiation in recent 54 years from measurements and reconstructions over the Tibetan Plateau. J Geophys Res 121(13):7673–7690.
  • Logan B. 2009. Exoelectrogenic bacteria that power microbial fuel cells. Nat Rev Microbiol 7(5):375–381.
  • Logan B, Rossi R, Ragab A, Saikaly P. 2019. Electroactive microorganisms in bioelectrochemical systems. Nat Rev Microbiol 17(5):307–319.
  • Lovley D, Holmes DE, Nevin KP. 2004. Dissimilatory Fe(III) and Mn(IV) reduction. Adv Microb Physiol 49:219–286.
  • Lovley D. 2006. Bug juice: harvesting electricity with microorganisms. Nat Rev Microbiol 4(7):497–508.
  • Lu A, Li Y, Ding H, Xu X, Li Y, Ren G, Liang J, Liu Y, Hong H, Chen N, et al. 2019. Photoelectric conversion on earth’s surface via widespread Fe- and Mn-mineral coatings. Proc Natl Acad Sci U S A 116(20):9741–9746.
  • Lu A, Li Y, Jin S, Wang X, Wu X, Zeng C, Li Y, Ding H, Hao R, Lv M, et al. 2012. Growth of non-phototrophic microorganisms using solar energy through mineral photocatalysis. Nat Commun 3:768.
  • Manohar A, Bretschger O, Nealson K, Mansfeld F. 2008. The use of electrochemical impedance spectroscopy (EIS) in the evaluation of the electrochemical properties of a microbial fuel cell. Bioelectrochemistry 72(2):149–154.
  • Martin AL, Satjaritanun P, Shimpalee S, Devivo BA, Weidner J, Greenway S, Henson JM, Turick CE. 2018. In-situ electrochemical analysis of microbial activity. AMB Express 8(1):162.
  • Melton E, Swanner E, Behrens S, Schmidt C, Kappler A. 2014. The interplay of microbially mediated and abiotic reactions in the biogeochemical Fe cycle. Nat Rev Microbiol 12(12):797–808.
  • Nevin KP, Woodard TL, Franks AE, Summers ZM, Lovley DR. 2010. Microbial electrosynthesis: feeding microbes electricity to convert carbon dioxide and water to multicarbon extracellular organic compounds. mBio 1:542–546.
  • Nimje VR, Chen CY, Chen CC, Jean JS, Reddy AS, Fan CW, Pan KY, Liu HT, Chen JJ. 2009. Stable and high energy generation by a strain of Bacillus subtilis in a microbial fuel cell. J Power Sources 190(2):258–263.
  • Qian F, Wang H, Ling Y, Wang G, Thelen MP, Li Y. 2014. Photoenhanced electrochemical interaction between Shewanella and a hematite nanowire photoanode. Nano Lett 14(6):3688–3693.
  • Ramasamy RP, Ren Z, Mench MM, Regan MM. 2008. Impact of initial biofilm growth on the anode impedance of microbial fuel cells. Biotechnol Bioeng 101(1):101–108.
  • Ren G, Sun Y, Sun M, Li Y, Lu A, Ding Y. 2017. Visible light enhanced extracellular electron transfer between a hematite photoanode and Pseudomonas aeruginosa. Minerals 7(12):230.
  • Ren G, Yan Y, Nie Y, Lu A, Wu X, Li Y, Wang C, Ding H. 2019. Natural extracellular electron transfer between semiconducting minerals and electroactive bacterial communities occurred on the rock varnish. Front Microbiol 10:293.
  • Ren G, Yan Y, Sun M, Wang X, Wu X, Li Y, Lu A, Ding H. 2018. Considerable bacterial community structure coupling with extracellular electron transfer at karst area stone in Yunnan, China. Geomicrobiol J 35(5):424–431.
  • Ren G, Yuan S, Ding Y, Lu A, Li Y, Wang C, Ding H. 2018. Enhancing extracellular electron transfer between Pseudomonas aeruginosa PAO1 and light driven semiconducting birnessite. Bioelectrochemistry 123:233–240.
  • Rowe AR, Rajeev P, Jain A, Pirbadian S, Okamoto A, Gralnick JA, El-Naggar Mohamed Y, Nealson Kenneth H. 2018. Tracking electron uptake from a cathode into Shewanella cells: implications for energy acquisition from solid-substrate electron donors. mBio 9:e002203–17.
  • Sakimoto KK, Wong AB, Yang PD. 2016. Self-photosensitization of nonphotosynthetic bacteria for solar-to-chemical production. Science 351(6268):74–77.
  • Shi L, Dong H, Reguera G, Beyenal H, Lu A, Liu J, Yu HQ, Fredrickson JK. 2016. Extracellular electron transfer mechanisms between microorganisms and minerals. Nat Rev Microbiol 14(10):651–662.
  • Sun M, Ren G, Li Y, Lu A, Ding H. 2019. Extracellular electron transfer between birnessite and electrochemically active bacteria community from red soil in Hainan, China. Geomicrobiol J 36(2):169–178.
  • Walter SRS, Jaekel U, Osterholz H, Fisher AT, Huber JA, Pearson A, Dittmar T, Girguis PR. 2018. Microbial decomposition of marine dissolved organic matter in cool oceanic crust. Nature Geosci 11(5):334–339.
  • Weber KA, Achenbach LA, Coates JD. 2006. Microorganisms pumping iron: anaerobic microbial iron oxidation and reduction. Nat Rev Microbiol 4(10):752–764.
  • Zhu G, Yang Y, Liu J, Liu F, Lu A, He W. 2017. Enhanced photocurrent production by the synergy of hematite nanowire-arrayed photoanode and bioengineered Shewanella oneidensis MR-1. Biosens Bioelectron 94:227–234.
  • Zhu X, Tokash J, Hong Y, Logan B. 2013. Controlling the occurrence of power overshoot by adapting microbial fuel cells to high anode potentials. Bioelectrochemistry 90:30–35.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.