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Unravelling the role of additives in the structure of non-aqueous media at the electrode
surface under potential control
N.J.D. Hill, C. O’Brien, P.M. Donaldson, H. Jang,
B. Siritanaratkul , G. Teobaldi, A.J. Cowan, A. Gardner
Faraday Discuss. 2026, in press
DOI: 10.1039/d5fd00118h ↗
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Research article
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Efficient, selective and low-overpotential electroreduction of CO2 into CO in water by a
quaterpyridine molecular copper complex immobilized onto carbon
M. Saad, B. Siritanaratkul , C.W.
Chang, Y.C. Hsiao, T.H. Yang, C. Lagrost, A.J. Cowan, N. Lalaoui, N. Le Poul
ACS Appl. Mater. Interfaces 2025, 17, 65661-65669
DOI: 10.1021/acsami.5c17693
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Research article
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Five-fold twinned copper nanowire gas diffusion electrodes for electrochemical CO2
reduction with enhanced C2 product selectivity and stability
H.Y. Chen, B. Siritanaratkul , C.N.
Liao, A.J. Cowan
Sustain. Energy Fuels 2025, 9, 5904
DOI: 10.1039/d5se01129a ↗
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Research article
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Alkali metal cations enhance CO2 reduction by a Co molecular complex in a bipolar membrane
electrolyzer
B. Siritanaratkul , M.D. Khan, E.H. Yu,
A.J. Cowan
Phil. Trans. R. Soc. A 2024, 382, 20230268
co-corresponding author
DOI: 10.1098/rsta.2023.0268
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Research article
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Potential dependent reorientation controlling activity of a molecular electrocatalyst
A. M. Gardner, G. Neri, B. Siritanaratkul ,
H. Jang, K. Saeed, P. Donaldson, A. J. Cowan
J. Am. Chem. Soc., 2024, 146, 7130-7134
DOI: 10.1021/jacs.3c13076 ↗
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Research article
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Pulsed Electrolysis with a Nickel Molecular Catalyst Improves Selectivity for Carbon
Dioxide Reduction
F. Greenwell, B. Siritanaratkul , P.K.
Sharma, E.H. Yu, A.J. Cowan
J. Am. Chem. Soc., 2023, 145, 15078-15083
DOI: 10.1021/jacs.3c04811 ↗
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Research article
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Improving the stability, selectivity, and cell voltage of a bipolar membrane zero-gap
electrolyzer for low-loss CO2 reduction
B. Siritanaratkul , P.K. Sharma, E.H.
Yu, A.J. Cowan
Adv. Mater. Interfaces, 2023, 2300203
DOI: 10.1002/admi.202300203
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A manganese complex on a gas diffusion electrode for selective CO2 to CO reduction
C. Eagle, G. Neri, V. Piercy, K. Younis, B.
Siritanaratkul , A.J. Cowan
Sustainable Energy & Fuels, 2023, 7, 2301-2307
DOI: 10.1039/d3se00236e ↗
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Research article
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Design principles for a nanoconfined enzyme cascade electrode via reaction–diffusion
modelling
B. Siritanaratkul
Phys. Chem. Chem. Phys, 2023, 25, 9357-9363
solo and corresponding author
DOI: 10.1039/d3cp00540b ↗
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Research article
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Zero-gap bipolar membrane electrolyzer for carbon dioxide reduction using acid-tolerant
molecular electrocatalysts
B. Siritanaratkul , M. Forster, F.
Greenwell, P.K. Sharma, E.H. Yu, A.J. Cowan
J. Am. Chem. Soc., 2022, 144, 7551-7556
Highlighted in Nature Catalysis
DOI: 10.1021/jacs.1c13024 ↗
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Research article
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Generalizability and limitations of machine learning for yield prediction of oxidative
coupling of methane
B. Siritanaratkul
Digital Chem. Eng., 2022, 2, 100013
solo and corresponding author
DOI:
10.1016/j.dche.2022.100013 ↗
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Research article
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Potassium Peroxide Species in Highly Selective Oxidative Coupling of Methane over an
Unmolten K2WO4/SiO2 Catalyst Revealed by In Situ Characterization
D. Li, S. Yoshida, B. Siritanaratkul ,
A. T. Garcia-Esparza, D. Sokaras, H. Ogasawara, K. Takanabe
ACS Catal., 2021, 11, 14237-14248
DOI:
10.1021/acscatal.1c04206 ↗
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Research article
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Oxidative coupling of methane over sodium zirconate catalyst
B. Siritanaratkul , S-T. B. Lundin, K.
Takanabe
Catal. Sci. Tech., 2021, 11, 4803-4811
DOI: 10.1039/d1cy00741f ↗
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Research article
09
Oxidative-coupling-assisted methane aromatization: a simulation study
D. Li, W.S. Baslyman, B. Siritanaratkul ,
T. Shinagawa, S.M. Sarathy, K. Takanabe
Ind. Eng. Chem. Res., 2019, 58, 22884-22892
DOI:
10.1021/acs.iecr.9b04602 ↗
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Research article
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Efficient electrocatalytic CO2 fixation by nanoconfined enzymes via a C3-to-C4 reaction
that is favored over H2 production
G. Morello, B. Siritanaratkul , C.F.
Megarity, F.A. Armstrong
ACS Catal, 2019, 9, 11255-11262
DOI:
10.1021/acscatal.9b03532 ↗
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Research article
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Electrocatalytic volleyball: rapid nanoconfined nicotinamide cycling for organic synthesis
in electrode pores
C.F. Megarity*, B. Siritanaratkul *,
R.S. Heath, L. Wan, G. Morello, S.R. FitzPatrick, R.L. Booth, A.J. Sills, A.W. Robertson,
J.H. Warner, N.J. Turner, F.A. Armstrong
Angew. Chem. Int. Ed., 2019, 58, 4948-4952
co-first authors, Hot paper, Highlighted in Nature News & Views
DOI: 10.1002/anie.201814370
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Research article
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Enzyme-catalysed enantioselective oxidation of alcohols by air exploiting fast
electrochemical nicotinamide cycling in electrode pores
L. Wan, R.S. Heath, B. Siritanaratkul ,
C.F. Megarity, A.J. Sills, M.P. Thompson, N.J. Turner, F.A. Armstrong
Green Chem., 2019, 21, 4958-4963
DOI: 10.1039/c9gc01534e ↗
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Research article
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A hydrogen fuel cell for rapid, enzyme-catalysed organic synthesis with continuous
monitoring
L. Wan, C.F. Megarity, B. Siritanaratkul ,
F.A. Armstrong
Chem. Comm., 2018, 54, 972-975
DOI: 10.1039/c7cc08859k ↗
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Research article
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Transfer of photosynthetic NADP+/NADPH recycling activity to a porous metal oxide for
highly specific, electrochemically-driven organic synthesis
B. Siritanaratkul , C.F. Megarity, T.G.
Roberts, T.O.M. Samuels, M. Winkler, J.H. Warner, T. Happe, F.A. Armstrong
Chem. Sci., 2017, 8, 4579-4586
DOI: 10.1039/c7sc00850c ↗
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Research article
03
Selective, light-driven enzymatic dehalogenations of organic compounds
B. Siritanaratkul , S.T.A. Islam, T.
Schubert, C. Kunze, T. Goris, G. Diekert, F.A. Armstrong
RSC Adv., 2016, 6, 84882-84886
DOI: 10.1039/c6ra19777a ↗
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Research article
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SrNbO2N as a Water Splitting Photoanode with a Wide Visible Light Absorption Band
K. Maeda, M. Higashi, B. Siritanaratkul ,
R. Abe and K. Domen
J. Am. Chem. Soc., 2011, 133, 12334-12337
DOI: 10.1021/ja203391w ↗
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Research article
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Synthesis and Photocatalytic Activity of Perovskite Niobium Oxynitrides with Wide
Visible-Light Absorption Bands
B. Siritanaratkul , K. Maeda, T.
Hisatomi and K. Domen
ChemSusChem, 2011, 4, 74–78
DOI: 10.1002/cssc.201000207
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