Bioelectrochemistry: Fundamentals, Experimental Techniques by Philip N. Bartlett PDF

By Philip N. Bartlett

ISBN-10: 0470843640

ISBN-13: 9780470843642

Bioelectrochemistry: basics, Experimental ideas and alertness, covers the elemental points of the chemistry, physics and biology which underlie this topic quarter. It describes a few of the diverse experimental suggestions that may be used to review bioelectrochemical difficulties and it describes quite a few purposes of biolelectrochemisty together with amperometric biosensors, immunoassays, electrochemistry of DNA, biofuel cells, complete mobile biosensors, in vivo purposes and bioelectrosynthesis. By bringing jointly those various elements, this paintings presents a distinct resource of data during this area, approaching the topic from a cross-disciplinary point of view.

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Extra info for Bioelectrochemistry: Fundamentals, Experimental Techniques and Applications

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Yu, H. -Z. Xia, A. M. Kachurin, L. Zhang, L. Yu and J. Deisenhofer, Crystal structure of the cytochrome bc1 complex from bovine heart mitochondria, Science, 277, 60–66 (1997). 32. M. Saraste, Structural features of cytochrome-oxidase, Quart. Rev. , 23, 331–366 (1990). 33. M. W. Calhoun, J. W. Thomas and R. B. Gennis, The cytochrome oxidase superfamily of redox-driven proton pumps, Trends Biochem. , 19, 325–330 (1994). 34. G. T. Babcock and M. Wilkst€om, Oxygen activation and the conservation of energy in cell respiration, Nature, 356, 301–309 (1992).

Unlike photosystem II, proton transfer across the membrane does not accompany the electron transfer. From the terminal 4Fe4S cluster, the electron is transferred to ferredoxin, a small (11 kDa) soluble one-electron redox protein containing a 2Fe2S cluster complexed to four cysteines. The reduced ferredoxin transfers electrons to NADP reductase, a peripheral protein bound on the inside of the thylakoid membrane near photosystem I [48]. Its role is to link the one electron transfers from the ferredoxin, Fd, to the two-electron reduction of NADPþ þ NADP þ þ Houtside þ 2Fd !

8 eV, leading to fast electron transfer kinetics. 3 Kinetics: Electron Transfer Rate Constants Organising the redox potentials of the individual couples in the electron transport pathways in sequence is only one part of the story. The ordering of the redox potentials controls the thermodynamic driving force for the reaction between each sequential pair of components in the chain, 28 Bioelectrochemistry but it cannot prevent non-specific electron transfer reactions between disparate components; indeed the thermodynamic driving force for these undesirable reactions may be significantly greater than for the specific, sequential electron transfer.

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Bioelectrochemistry: Fundamentals, Experimental Techniques and Applications by Philip N. Bartlett


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