References
103
26. Zhang C, Wang Y-C, An B, Huang R, Wang C, Zhou Z, Lin W (2017) Networking
pyrolyzed zeolitic imidazolate frameworks by carbon nanotubes improves conductivity and
enhances oxygen-reduction performance in polymer-electrolyte-membrane fuel cells. Adv
Mater 29(4):1604556. https://doi.org/10.1002/adma.201604556
27. Gentil S, Lalaoui N, Dutta A, Nedellec Y, Cosnier S, Shaw WJ, Artero V, Le Goff A
(2017) Carbon-nanotube-supported bio-inspired nickel catalyst and its integration in hybrid
hydrogen/air fuel cells. Angew Chem Int Ed 56(7):1845–1849. https://doi.org/10.1002/anie.
201611532
28. Hou Y, Yuan H, Wen Z, Cui S, Guo X, He Z, Chen J (2016) Nitrogen-doped graphene/CoNi
alloy encased within bamboo-like carbon nanotube hybrids as cathode catalysts in microbial
fuel cells. J Power Sources 307:561–568. https://doi.org/10.1016/j.jpowsour.2016.01.018
29. Zeng Y, Shao Z, Zhang H, Wang Z, Hong S, Yu H, Yi B (2017) Nanostructured ultrathin catalyst
layer based on open-walled PtCo bimetallic nanotube arrays for proton exchange membrane
fuel cells. Nano Energy 34:344–355. https://doi.org/10.1016/j.nanoen.2017.02.038
30. Remy E, Thomas Y, Guetaz L, Fouda-Onana F, Jacques P-A, Heitzmann M (2018) Optimization
and tunability of 2D graphene and 1D carbon nanotube electrocatalysts structure for PEM fuel
cells. Catalysts 8(9):377
31. Gentil S, Che Mansor SM, Jamet H, Cosnier S, Cavazza C, Le Goff A (2018) Oriented immobilization of [NiFeSe] hydrogenases on covalently and noncovalently functionalized carbon
nanotubes for H2/Air enzymatic fuel cells. ACS Catal 8(5):3957–3964. https://doi.org/10.
1021/acscatal.8b00708
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