An Atomic-Scale View at γ'-Fe4N as Hydrogen Barrier Material

  • Albrecht, Aleksander; 
  • Song, Sang Yoon; 
  • Yoo, Su-Hyun; 
  • Lee, Chang-Gi; 
  • Kraemer, Mathias; 
  • ... Sohn, Seok Su; 
  • 외 6명
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SCOPUS

3

초록

Hydrogen, while a promising sustainable energy carrier, presents challenges such as the embrittlement of materials due to its ability to penetrate and weaken their crystal structures. Here gamma'-Fe4N nitride layers, formed on iron through a cost-effective gas nitriding, are investigated as an effective hydrogen permeation barrier. The relatively short process carried out at 570 degrees C consisted of pre-nitriding in an atmosphere with higher nitriding potential, followed by treatment in a nitriding potential of 0.0016 Pa-1/2 to obtain a pure gamma' layer. A combination of screening methods, including atom probe tomography, density functional theory calculations, and hydrogen permeation analysis, revealed that the nitride layer reduces hydrogen diffusion (steady-state hydrogen flux 3.21 x 10(-8) mol/m(2)<middle dot>s) by a factor of 20 compared to pure iron, at room temperature. This reduction is achieved by creating energetically unfavorable states due to stronger hydrogen-binding at the surface and high energy barriers for diffusion. The findings demonstrate the potential of gamma'-Fe4N as a cost-efficient and easy-to-process solution to protect metallic materials exposed to hydrogen at low temperatures, with great advantages for large-scale applications.

키워드

electrolytic hydrogen charging; Fe4N; hydrogen diffusion barrier; hydrogen imaging; nitriding steel; STAINLESS-STEEL; OUTGASSING RATE; THIN-FILM; PERMEATION; ABSORPTION; IRON; GAMMA'-FE4N; NITROGEN; LAYER; CONTAMINATION
제목
An Atomic-Scale View at γ'-Fe4N as Hydrogen Barrier Material
저자
Albrecht, Aleksander; Song, Sang Yoon; Yoo, Su-Hyun; Lee, Chang-Gi; Kraemer, Mathias; Hans, Marcus; Gault, Baptiste; Ma, Yan; Raabe, Dierk; Sohn, Seok Su; Lee, Yonghyuk; Kim, Se-Ho
DOI
10.1002/admi.202500207
발행일
2025-05-13
유형
Article; Early Access
저널명
Advanced Materials Interfaces
권
12
호
13