Peer-reviewed publications in international scientific journals, newest first. Numbering runs in reverse, so each new paper takes the next number up.
- 83.“Electrochemical characterization of C. pasteurianum hydrogenase II and four site-directed variants: catalysis and inhibition”Preprint
Preprint: researchsquare.com/article/rs-9543296/v1 - 82.“Direct electrochemistry of hydrogenase, formate dehydrogenase, CO dehydrogenase and nitrogenase: Wiring strategies and mechanistic insights into metalloenzymes that produce solar fuels”Non-corresponding authors listed alphabetically
- 81.“Interfacing Broad-Spectrum Semiconductors with Hydrogenases for Semi-Artificial Solar Reforming of Cellulose”Journal of the American Chemical Society, accepted
DOI: 10.1021/jacs.6c03439
Raw data: 10.17863/CAM.129517 - 80.“Cooperativity in Enzyme-Substrate Complex Formation in Nitrogenase-like Dark Operative Protochlorophyllide Oxidoreductase (DPOR)”
- 79.“A Low-Potential π-Extended Viologen Electron Donor Results in Increased H2 Production by CpI [FeFe]-hydrogenase”ACS Organic & Inorganic Au, accepted
DOI: 10.1021/acsorginorgau.5c00106
Raw data: 10.5281/zenodo.15688676 · Preprint: 10.26434/chemrxiv-2025-xvpmh - 78.“Probing the Ferredoxin:Hydrogenase Electron Transfer Complex by Infrared Difference Spectroscopy”Chemical Science, 16, 10465–10475
DOI: 10.1039/D5SC00550G - 77.“Enzyme-Substrate Complex Formation and Electron Transfer in Nitrogenase-Like Dark-Operative Protochlorophyllide Oxidoreductase (DPOR)”
- 76.“Bio-Inpsired Self-Assembly of Enzyme-Micelle Systems for Semi-Artificial Photosynthesis”Angewandte Chemie Int. Ed., e202424222
DOI: 10.1002/anie.202424222 - 75.“Cisplatin and the Dissolution of Electrodes in Electrochemistry Experiments”CHIMIA, 73 (1/2), 97–98
DOI: 10.2533/chimia.2025.97 - 74.“Towards Scalable Electroenzymatic Hydrogen Production with [FeFe]-Hydrogenase”ChemElectroChem, accepted, e202400700
DOI: 10.1002/celc.202400700 - 73.“Dream Reactions of CO2 Capture, Conversion and Beyond”Cell Reports Physical Science, 5 (12), 102302
DOI: 10.1016/j.xcrp.2024.102302 - 72.“Mesoporous Electrodes Enhance the Electrocatalytic Performance of [FeFe]-Hydrogenase”Angewandte Chemie International Edition, 64 (5), e202416658
DOI: 10.1002/anie.202416658
Repository: 10.5281/zenodo.14245154 - 71.“Cross-Coupling of Mo- and V-Nitrogenases Permits Protein-Mediated Protection from Oxygen Deactivation”
- 70.“Toward an informative comparison of heterogeneous, synthetic, and biological electrocatalysis in energy conversion”Chem Catalysis, 4 (10), 101098
DOI: 10.1016/j.checat.2024.101098 - 69.“Structural Comparison of (Hyper)-Thermophilic Nitrogenase Reductases from Three Marine Methanococcales”The FEBS Journal, 291 (15), 3454–3480
DOI: 10.1111/febs.17148 - 68.“Electron-Transferring Metalloenzymes and their Potential Biotechnological Applications”CHIMIA, 78 (1/2), 13–21
DOI: 10.2533/chimia.2024.13 - 67.“Electrostatic [FeFe]-hydrogenase-carbon nitride assemblies for efficient solar hydrogen production”Chemical Science, in press
DOI: 10.1039/D4SC00640B - 66.“The Mononuclear Metal-Binding Site of Mo-nitrogenase Is Not Required for Activity”JACS Au, 3 (11), 2993–2999
DOI: 10.1021/jacsau.3c00567 - 65.“Bioelectrocatalytic CO2 reduction by Mo-dependent formymethanofuran dehydrogenase”Angewandte Chemie International Edition, 62 (45), e202311981
DOI: 10.1002/anie.202311981 - 64.“Nitrogen fixation and hydrogen evolution by sterically encumbered Mo-nitrogenase”JACS Au, 3 (5), 1521–1533
DOI: 10.1021/jacsau.3c00165 - 63.“Characterization of ferredoxins from the thermophilic, acetogenic bacterium Thermoanaerobacter kivui”The FEBS Journal, 290 (16), 4107–4125
DOI: 10.1111/febs.16801 - 62.“Facile functionalization of carbon electrodes for efficient electroenzymatic hydrogen production”JACS Au, 3 (1), 124–130
DOI: 10.1021/jacsau.2c00551 - 61.“Enzymatic and microbial electrochemistry: Approaches and Methods”ACS Measurement Science Au, 2 (6), 517–541
DOI: 10.1021/acsmeasuresciau.2c00042 - 60.“Alternative electron donors for the nitrogenase-like dark operative protochlorophyllide oxidoreductase (DPOR)”ChemElectroChem, 9 (21), e202200774
DOI: 10.1002/celc.202200774 - 59.“Peroxidase activity of myoglobin variants reconstituted with artificial cofactors”ChemBioChem, 23 (18), e202200197
DOI: 10.1002/cbic.202200197 - 58.“Evolving enzymatic electrochemistry with rare or unnatural amino acids”Current Opinion in Electrochemistry, 35, 101102
DOI: 10.1016/j.coelec.2022.101102 - 57.“Nitrogenase loosens its belt to fix dinitrogen”
- 56.“Following Electroenzymatic Hydrogen Production by Rotating Ring Disk Electrochemistry and Mass Spectrometry”Angewandte Chemie International Edition, 60 (18), 10001–10006
DOI: 10.1002/anie.202100863 - 55.“Natural and Engineered Electron Transfer of Nitrogenase”Chemistry, 2 (2), 322–346
DOI: 10.3390/chemistry2020021Invited contribution - 54.“Recent Enzymatic Electrochemistry for Reductive Reactions”ChemElectroChem, 7 (9), 1974–1986
DOI: 10.1002/celc.202000282Invited contribution - 53.“Nitrogenase Bioelectrochemistry for Electrosynthesis Applications”Accounts of Chemical Research, 51 (12), 3351–3360
DOI: 10.1021/acs.accounts.9b00494Invited contribution
- 52.“Enhanced Electrosynthetic Hydrogen Evolution by Hydrogenases Embedded in a Redox-Active Hydrogel”Chemistry – A European Journal, 26 (32), 7323–7329
DOI: 10.1002/chem.202000750 - 51.“Pyrene-based Noncovalent Immobilization of Nitrogenase on Carbon Surfaces”ChemBioChem, 21 (12), 1729–1732
DOI: 10.1002/cbic.201900697 - 50.“Microbial Battery Powered Enzymatic Electrosynthesis for Carbon Capture and Generation of Hydrogen and Formate from Dilute Organics”ACS Energy Letters, 4 (12), 2929–2936
DOI: 10.1021/acsenergylett.9b02203 - 49.“Efficient NADH Regeneration by a Redox Polymer-Immobilized Enzymatic System”ACS Catalysis, 9 (6), 5486–5495
- 48.“Following Nature: Bioinspired Mediation Strategy for Gram-Positive Bacterial Cells”Advanced Energy Materials, 9 (16), 1900215
- 47.“Performance Comparison of Different Configurations of Glucose/O2 Microfluidic Biofuel Cell Stack”Journal of Power Sources, 414, 150–157
- 46.“Methanococcus maripaludis Employs Three Functional Heterodisulfide Reductase Complexes for Flavin-Based Electron Bifurcation Using Hydrogen and Formate”Biochemistry, 57 (32), 4848–4857
- 45.“Improved Performance of a Paper-Based Glucose Fuel Cell by Capillary Induced Flow”Electrochimica Acta, 282, 336–342
- 44.“Catalysts for Nitrogen Reduction to Ammonia”Nature Catalysis, 1, 490–500
- 43.“Creating a Low-Potential Redox Polymer for Efficient Electroenzymatic CO2 Reduction”Angewandte Chemie International Edition, 57 (22), 6582–6586
- 42.“Electroenzymatic C-C Bond Formation from CO2”Journal of the American Chemical Society, 140 (15), 5041–5044
- 41.“Molybdenum-Dependent Formate Dehydrogenase for Formate Bioelectrocatalysis in a Formate/O2 Enzymatic Fuel Cell”Journal of the Electrochemical Society, 165 (3), H109–H113
- 40.“Mediator-free enzymatic electrosynthesis of formate by the Methanococcus maripaludis heterodisulfide reductase supercomplex”Bioresource Technology, 254, 278–283
- 39.“Mechanism of nitrogenase H2 formation by metal-hydride protonation probed by mediated electrocatalysis and H/D isotope effects”Journal of the American Chemical Society, 139 (38), 13518–13524
- 38.“Hybrid bioelectrocatalytic reduction of oxygen at anthracene-modified multi-walled carbon nanotubes decorated with Ni90Pd10 nanoparticles”Electrochimica Acta, 251, 195–202
- 37.“Enhanced bioelectrocatalysis of Shewanella oneidensis MR-1 by a naphthoquinone redox polymer”ACS Energy Letters, 1, 1568–1572
- 36.“Investigating extracellular electron transfer of Rikenella microfusus: A recurring bacterium in mixed-species biofilms”Sustainable Energy Fuels, 1, 1568–1572
- 35.“Direct enzymatic bioelectrocatalysis: Differentiating between myth and reality”Journal of the Royal Society: Interface, 14 (131), 20170253Invited contribution
- 34.“Bioelectrocatalytic NAD+/NADH Inter-Conversion: Transformation of an Enzymatic Fuel Cell into an Enzymatic Redox Flow Battery”Chemical Communications, 53, 8411–8414
- 33.“The In Vivo Potential-Regulated Protective Protein of Nitrogenase in Azotobacter vinelandii Supports Aerobic Bioelectrochemical Dinitrogen Reduction In Vitro”Journal of the American Chemical Society, 139 (26), 9044–9052
- 32.“Photobioelectrocatalysis of Intact Chloroplasts for Solar Energy Conversion”ACS Catalysis, 7 (4), 2257–2265
- 31.“Substrate Channeling in an Artificial Metabolon: A Molecular Dynamics Blueprint for an Experimental Peptide Bridge”ACS Catalysis, 7 (4), 2486–2493
- 30.“Bioelectrochemical Haber-Bosch process: An Ammonia-Producing H2/N2 Fuel Cell”Angewandte Chemie International Edition, 56 (10), 2680–2683Deemed “Very Important Paper” by reviewers · Press release
- 29.“Rechargeable Membraneless Glucose Biobattery: Towards Solid-State Cathodes for Implantable Enzymatic Devices”Journal of Power Sources, 343, 103–108
- 28.“Improving the Performance of Lactate/Oxygen Biofuel Cells Using a Microfluidic Design”Journal of Power Sources, 342, 546–552
- 27.“Rational Combination of Promiscuous Enzymes Yields a Versatile Enzymatic Fuel Cell with Improved Coulombic Efficiency”Journal of the Electrochemical Society, 164 (3), H3073–H3082
- 26.“Cholesterol as a Promising Alternative Energy Source: Bioelectrocatalytic Oxidation Using NAD-Dependent Cholesterol Dehydrogenase in Human Serum”Journal of the Electrochemical Society, 164 (3), H3024–H3029
- 25.“Enzymatic Bioelectrosynthetic Ammonia Production: Recent Electrochemistry of Nitrogenase, Nitrate Reductase, and Nitrite Reductase”ChemPlusChem, 82 (4), 513–521
- 24.“Improving O2 reduction at an enzymatic biocathode: mimicking the lungs”Chemical Communications, 52, 13299–13302
- 23.“Wiring of Photosystem I and Hydrogenase on an Electrode for Photoelectrochemical H2 Production by using Redox Polymers for Relatively Positive Onset Potential”ChemElectroChem, 4 (1), 90–95
- 22.“Hybrid Glucose/O2 Biobattery and Supercapacitor Utilizing a Pseudocapacitive Dimethylferrocene Redox Polymer at the Bioanode”ACS Energy Letters, 1 (2), 380–385Featured in Chemical & Engineering News
- 21.“Nitrogenase bioelectrocatalysis: heterogeneous ammonia and hydrogen production by MoFe protein”Energy & Environmental Science, 9, 2550–2554
- 20.“Membraneless enzymatic ethanol/O2 fuel cell: Transitioning from an air-breathing Pt-based cathode to a bilirubin oxidase-based biocathode”Journal of Power Sources, 324, 208–214
- 19.“Laccase Inhibition by Arsenite/Arsenate: Determination of Inhibition Mechanism and Preliminary Application to a Self-Powered Biosensor”Analytical Chemistry, 88 (6), 3243–3248
- 18.“Tailoring Biointerfaces for Electrocatalysis”Langmuir, 32 (10), 2291–2301Invited feature article (front cover)
- 17.“NAD-dependent dehydrogenase bioelectrocatalysis: the ability of a naphthoquinone redox polymer to regenerate NAD”Chemical Communications, 52, 1147–1150
- 16.“A self-powered amperometric lactate biosensor based on lactate oxidase immobilized in dimethylferrocene-modified LPEI”Biosensors & Bioelectronics, 77, 26–31
- 15.“Bioelectrochemical Study of Thermostable Pycnoporus sanguineus CS43 Laccase Bioelectrodes Based on Pyrolytic Carbon Nanofibers for Bioelectrocatalytic O2 Reduction”ACS Catalysis, 5, 7507–7518
- 14.“Promiscuous Glucose Oxidase: Electrical Energy Conversion of Multiple Polysaccharides Spanning Starch and Dairy Milk”ACS Catalysis, 5, 7218–7225
- 13.“TEMPO-Modified Linear Poly(ethylenimine) for Immobilization-Enhanced Electrocatalytic Oxidation of Alcohols”ACS Catalysis, 5, 5519–5524
- 12.“Rational design of quinones for high power density biofuel cells”Chemical Science, 6, 4867–4875
- 11.“High current density PQQ-dependent alcohol and aldehyde dehydrogenase bioanodes”Biosensors & Bioelectronics, 72, 247–254
- 10.“Employing FAD-dependent glucose dehydrogenase within a glucose/oxygen enzymatic fuel cell operating in human serum”Bioelectrochemistry, 106 Part A, 56–63
- 9.“Co-immobilization of gold nanoparticles with glucose oxidase to improve bioelectrocatalytic glucose oxidation”Journal of Power Sources, 285, 493–498
- 8.“Regeneration of the NADH Cofactor by a Rhodium Complex Immobilized on Multi-Walled Carbon Nanotubes”Journal of the Electrochemical Society, 162 (3), H102–107
- 7.“Simplifying Enzymatic Biofuel Cells: Immobilized Naphthoquinone as a Biocathodic Orientational Moiety and Bioanodic Electron Mediator”ACS Catalysis, 5, 1240–1244
- 6.“Investigating the Reversible Inhibition Model of Laccase by Hydrogen Peroxide for Bioelectrocatalytic Applications”Journal of the Electrochemical Society, 161, H3011–3014
- 5.“From PEM Fuel Cell Design to Biological Fuel Cells: The Status of Systems Development for Biological Fuel Cells”Electrochemical Society (ECS) Transactions, 64 (3), 881–895Invited review article
- 4.“Glucose oxidase progressively lowers bilirubin oxidase bioelectrocatalytic cathode performance in single-compartment glucose/oxygen biological fuel cells”Electrochimica Acta, 140, 59–64
- 3.“Bilirubin oxidase bioelectrocatalytic cathodes: the impact of hydrogen peroxide”Chemical Communications, 50 (1), 94–96
- 2.“Hydrogen peroxide produced by glucose oxidase affects the performance of laccase cathodes in glucose/oxygen fuel cells: FAD-dependent glucose dehydrogenase as a replacement”Physical Chemistry Chemical Physics, 15 (44), 19371–19379
- 1.“An optimised glucose oxidase bioelectrode exhibiting high performance direct electron transfer”Physical Chemistry Chemical Physics, 14 (27), 9582–9585