Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 56 checked references that resolve
resolves10.1021/ja107420aControlling Electron Transfer in Donor−Bridge−Acceptor Molecules Using Cross-Conjugated Bridges
resolves10.1016/j.bioelechem.2006.06.001Direct electrochemistry behavior of cytochrome c/l-cysteine modified electrode and its electrocatalytic oxidation to nitric oxide
resolves10.1039/b108359gInsights from protein film voltammetry into mechanisms of complex biological electron-transfer reactionsBased on the presentation given at Dalton Discussion No. 4, 10–13th January 2002, Kloster Banz, Germany.
resolves10.1016/j.cbpa.2005.02.011Recent developments in dynamic electrochemical studies of adsorbed enzymes and their active sites
resolves10.1021/bi034789cEnzyme Electrokinetics: Using Protein Film Voltammetry To Investigate Redox Enzymes and Their Mechanisms
resolves10.1021/cr0680742Direct Electrochemistry of Redox Enzymes as a Tool for Mechanistic Studies
resolves10.1038/46972Natural engineering principles of electron tunnelling in biological oxidation–reduction
resolves10.1002/adsc.201100534Potential of Different Enzyme Immobilization Strategies to Improve Enzyme Performance
resolves10.1039/b507989fRedox and redox-coupled processes of heme proteins and enzymes at electrochemical interfaces
resolves10.1039/c3977000771bNovel method for the investigation of the electrochemistry of metalloproteins: cytochrome c
resolves10.1002/elan.201200555Direct Electrochemistry Based Biosensors and Biofuel Cells Enabled with Nanostructured Materials
resolves10.1016/j.talanta.2007.05.050Direct electrochemistry and electrocatalysis of cytochrome c immobilized on gold nanoparticles–chitosan–carbon nanotubes-modified electrode
resolves10.1039/C4CP00452CEvidence of short-range electron transfer of a redox enzyme on graphene oxide electrodes
resolves10.1016/j.ab.2005.04.040Direct electrochemistry and electrocatalysis of heme proteins immobilized on gold nanoparticles stabilized by chitosan
resolves10.1016/j.elecom.2006.07.032A strategy for enzyme immobilization on layer-by-layer dendrimer–gold nanoparticle electrocatalytic membrane incorporating redox mediator
resolves10.1021/jp981023rInterpreting the Catalytic Voltammetry of Electroactive Enzymes Adsorbed on Electrodes
resolves10.3390/s120810450Mechanisms for the Direct Electron Transfer of Cytochrome c Induced by Multi-Walled Carbon Nanotubes
resolves10.1021/la700817yMorphology-Dependent Electrochemistry and Electrocatalytical Activity of Cytochrome <i>c</i>
resolves10.1016/j.snb.2003.09.026Differential pulse voltammetry determination of ascorbic acid with ferrocene-l-cysteine self-assembled supramolecular film modified electrode
resolves10.3390/s20200041Studies on the Electrochemical Behaviour of Hydroquinone at L-cysteine Self-Assembled Monolayers Modified Gold Electrode
resolves10.1016/0021-9797(91)90259-BChemisorption of -cysteine and 3-mercaptopropionic acid on gold and copper surfaces: An infrared reflection-absorption study
resolves10.1021/la0495736Adsorption and Immobilization of Cytochrome <i>c</i> on Nanodiamonds
resolves10.1016/j.bios.2004.01.015Direct electrochemistry and electrocatalysis of heme-proteins entrapped in agarose hydrogel films
resolves10.1016/S0022-0728(79)80075-3General expression of the linear potential sweep voltammogram in the case of diffusionless electrochemical systems
resolves10.1021/ac00091a028Cyclic Voltammetric Analysis of Ferrocene Alkanethiol Monolayer Electrode Kinetics Based on Marcus Theory
resolves10.1021/ac00091a027Voltammetry of Redox-Active Groups Irreversibly Adsorbed onto Electrodes. Treatment Using the Marcus Relation between Rate and Overpotential
resolves10.1021/ac980557lFast-Scan Cyclic Voltammetry of Protein Films on Pyrolytic Graphite Edge Electrodes: Characteristics of Electron Exchange
resolves10.5012/bkcs.2006.27.3.381Determination of Reorganization Energy from the Temperature Dependence of Electron Transfer Rate Constant for Hydroquinone-tethered Self-assembled Monolayers (SAMs)
resolves10.1021/j100035a016The Kinetics of Electron Transfer Through Ferrocene-Terminated Alkanethiol Monolayers on Gold
resolves10.1021/ja960866yKinetic Parameters for Cytochrome <i>c</i> via Insulated Electrode Voltammetry
resolves10.1021/j100126a037Characterization of cytochrome c/alkanethiolate structures prepared by self-assembly on gold
resolves10.1021/ja311786bElectrostatically Driven Second-Sphere Ligand Switch between High and Low Reorganization Energy Forms of Native Cytochrome <i>c</i>
resolves10.1021/jp068453zGold Nanoparticle Assisted Assembly of a Heme Protein for Enhancement of Long-Range Interfacial Electron Transfer
resolves10.1021/ja109295xOn the Origin of the Efficient Nanoparticle Mediated Electron Transfer across a Self-Assembled Monolayer
resolves10.1021/jp054127sNanoparticle-Mediated Electron Transfer Across Ultrathin Self-Assembled Films
resolves10.1021/j100155a072Adsorbed .omega.-hydroxy thiol monolayers on gold electrodes: evidence for electron tunneling to redox species in solution
resolves10.1021/ja00167a028Coadsorption of ferrocene-terminated and unsubstituted alkanethiols on gold: electroactive self-assembled monolayers
resolves10.1021/ja00035a001Electron-transfer kinetics in organized thiol monolayers with attached pentaammine(pyridine)ruthenium redox centers
The 8 references without a DOI — listed, not checked
no DOI — not checkedD. Voet and J. G.Voet, Biochemistry, John Wiley, New Jersey, 3rd edn, 2003
no DOI — not checkedR. A. Luz , R. M.Iost and F. N.Crespilho, in Nanobioelectrochemistry, Springer, 2013, pp. 27–48
no DOI — not checkedG. M. Olyveira , R. M.Iost, R. A.Luz and F. N.Crespilho, in Nanoenergy, Springer, 2013, pp. 101–123
no DOI — not checkedA. J. Bard and R. L.Faulkner, Electrochemical Methods: Fundamentals and Applications, John Wiley & Sons, New York, 1980
no DOI — not checkedR. Silverstein and F.Webster, Spectrometric identification of organic compounds, John Wiley & Sons, 7th edn, 2005
no DOI — not checkedA. M. Bond , Modern Polarographic Methods in Analytical Chemistry, Taylor & Francis, 1980
no DOI — not checkedC6RA09830D-(cit47)/*[position()=1]
no DOI — not checkedJ. F. Rusling , B.Wang and S. E.Yun, Bioelectrochemistry: Fundamentals, Experimental Techniques and Applications, 2008, pp. 39–85
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