Skip to main content

Research Repository

Advanced Search

Platinum nanoparticle decorated vertically aligned graphene screen-printed electrodes: electrochemical characterisation and exploration towards the hydrogen evolution reaction

Scremin, J; dos Santos, I; Hughes, JP; Ferrari, A; Valderrama, E; Zheng, W; Zhong, X; Zhao, X; Sartori, E; Crapnell, RD; Rowley-Neale, SJ; Banks, CE

Platinum nanoparticle decorated vertically aligned graphene screen-printed electrodes: electrochemical characterisation and exploration towards the hydrogen evolution reaction Thumbnail


Authors

J Scremin

I dos Santos

JP Hughes

E Valderrama

W Zheng

X Zhong

X Zhao

E Sartori

RD Crapnell

SJ Rowley-Neale

CE Banks



Abstract

We present the fabrication of platinum (Pt0) nanoparticle (ca. 3 nm average diameter) decorated vertically aligned graphene (VG) screen-printed electrodes (Pt/VG-SPE) and explore their physicochemical characteristics and electrocatalytic activity towards the hydrogen evolution reaction (HER) in acidic media (0.5 M H2SO4). The Pt/VG-SPEs exhibit remarkable HER activity with an overpotential (recorded at −10 mA cm−2) and Tafel value of 47 mV (vs. RHE) and 27 mV dec−1. These values demonstrate the Pt/VG-SPEs as significantly more electrocatalytic than a bare/unmodified VG-SPE (789 mV (vs. RHE) and 97 mV dec−1). The uniform coverage of Pt0 nanoparticles (ca. 3 nm) upon the VG-SPE support results in a low loading of Pt0 nanoparticles (ca. 4 μg cm−2), yet yields comparable HER activity to optimal Pt based catalysts reported in the literature, with the advantages of being comparatively cheap, highly reproducible and tailorable platforms for HER catalysis. In order to test any potential dissolution of Pt0 from the Pt/VG-SPE surface, which is a key consideration for any HER catalyst, we additively manufactured (AM) a bespoke electrochemical flow cell that allowed for the electrolyte to be collected at regular intervals and analysed via inductively coupled plasma optical emission spectroscopy (ICP-OES). The AM electrochemical cell can be rapidly tailored to a plethora of geometries making it compatible with any size/shape of electrochemical platform. This work presents a novel and highly competitive HER platform and a novel AM technique for exploring the extent of Pt0 nanoparticle dissolution upon the electrode surface, making it an essential study for those seeking to test the stability/catalyst discharge of their given electrochemical platforms.

Citation

Scremin, J., dos Santos, I., Hughes, J., Ferrari, A., Valderrama, E., Zheng, W., …Banks, C. (2020). Platinum nanoparticle decorated vertically aligned graphene screen-printed electrodes: electrochemical characterisation and exploration towards the hydrogen evolution reaction. Nanoscale, 35, https://doi.org/10.1039/D0NR04336B

Journal Article Type Article
Acceptance Date Aug 12, 2020
Publication Date Aug 21, 2020
Deposit Date Jun 15, 2023
Publicly Available Date Jun 15, 2023
Journal Nanoscale
Print ISSN 2040-3364
Publisher Royal Society of Chemistry
Peer Reviewed Peer Reviewed
Volume 35
DOI https://doi.org/10.1039/D0NR04336B