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Porosity and thickness effect of Pd–Cu–Si metallic glasses on electrocatalytic hydrogen production and storage

  • Baran Sarac
  • , Tolga Karazehir
  • , E. Yüce
  • , Marlene Mühlbacher
  • , A. Sezai Sarac
  • , Jürgen Eckert
  • Erich-Schmid-Institut für Materialwissenschaft der Österreichischen Akademie der Wissenschaften
  • Adana Alparslan Türkeş Science and Technology University
  • Technische Universität Istanbul

Publikation: Beitrag in FachzeitschriftArtikelForschungBegutachtung

3 Zitate (Scopus)

Abstract

This contribution places emphasis on tuning pore architecture and film thickness of mesoporous Pd–Cu–Si thin films sputtered on Si/SiO2 substrates for enhanced electrocatalytic and hydrogen sorption/desorption activity and their comparison with the state-of-the-art thin film electrocatalysts. Small Tafel slope of 43 mV dec–1 for 1250 nm thick coating on 2 µm diameter pores with 4.2 µm interspacing electrocatalyst with comparable hydrogen overpotentials to the literature suggests its use for standard fuel cells. The largest hydrogen sorption has been attained for the 250 nm thick electrocatalyst on 5 µm pore diameter with 12 µm interspacing (2189 µC cm−2 per CV cycle), making it possible for rapid storage systems. Moreover, the charge transfer resistance described by an equivalent circuit model has an excellent correlation with Tafel slopes. Along with its very low Tafel slope of 42 mV dec–1 10 nm thick electrocatalyst on 2 µm diameter pores with 4.2 µm interspacing has the highest capacitive response of ∼ 0.001 S sn cm−2 and is promising to be used as a nano-charger and hydrogen sensor. The findings of Si/SiO2 supported mesoporous Pd-based metallic glass (MG) assemblies suggest a similar design applicability for crystalline systems and other MG types.
OriginalspracheEnglisch
Aufsatznummer110099
Seitenumfang9
FachzeitschriftMaterials and Design
Jahrgang210.2021
Ausgabenummer15 November
DOIs
PublikationsstatusVeröffentlicht - 7 Sept. 2021

Bibliographische Notiz

Funding Information:
The authors thank A. Asci for metallographic sample preparation, M. Aydin for AFM imaging, Y. P. Ivanov for TEM imaging, B. Kaynak for XPS analysis, C. Mitterer for providing the sputtering device and V. Terziyska for synthesizing the TFMGs. This work was supported by the Austrian Science Fund (FWF) : I3937-N36 , the European Research Council under the Advanced Grants “INTELHYB – Next generation of complex metallic materials in intelligent hybrid structures” (Grant ERC-2013-ADG-340025), and the Ministry of Science and Higher Education of the Russian Federation in the framework of the Increase Competitiveness Program of NUST «MISiS» (grant number K3-2015-036 ).

Publisher Copyright:
© 2021 The Authors

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  1. SDG 7 – Erschwingliche und saubere Energie
    SDG 7 – Erschwingliche und saubere Energie

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