Computational atomic‐scale design and experimental verification for layered double hydroxide as an efficient alkaline oxygen evolution reaction catalyst. (19th April 2022)
- Record Type:
- Journal Article
- Title:
- Computational atomic‐scale design and experimental verification for layered double hydroxide as an efficient alkaline oxygen evolution reaction catalyst. (19th April 2022)
- Main Title:
- Computational atomic‐scale design and experimental verification for layered double hydroxide as an efficient alkaline oxygen evolution reaction catalyst
- Authors:
- Jung, Sun Young
Kim, Kang Min
Mhin, Sungwook
Kim, Young‐Kwang
Ryu, Jeong Ho
Enkhtuvshin, Enkhbayar
Kim, So Jung
Thao, Nguyen Thi Thu
Choi, Seunggun
Song, Taeseup
Han, HyukSu - Abstract:
- Summary: Electrochemical water splitting is one of the most efficient techniques to produce hydrogen in an environmentally friendly way. However, a sluggish anodic reaction, namely oxygen evolution reaction (OER), requires the use of an efficient electrocatalyst for achieving economic hydrogen production. Transition‐metal‐based layered double hydroxides (LDHs) are promising electrocatalysts for reducing the overpotential of OER in alkaline electrolyte, which is essential for efficient water electrolysis. Nickel‐iron‐based LDHs (Ni‐Fe LDH) have been regarded as the best OER electrocatalysts under alkaline conditions. Hence, a number of research studies have been conducted on further improving the electrocatalytic performance of Ni‐Fe LDH. Although the chemical blending of other transition metals with Ni‐Fe‐LDH is a simple and reliable strategy to enhance the OER activity of Ni‐Fe‐LDH, a systematic investigation on designing Ni‐Fe‐LDH with different additional elements is still lacking. In addition, the design of multi‐metallic LDH compound via only experimental method is very costly and time‐consuming process. In this study, atomic‐scale computational and experimental studies are performed to design OER electrocatalysts including unary, binary, and ternary LDH compounds consisting of Ni, Fe, Al, and Co. Density functional theory calculations predict that Ni‐Fe‐Co ternary LDH can lead to the lowest overpotential for alkaline OER among various computationally modeled LDHSummary: Electrochemical water splitting is one of the most efficient techniques to produce hydrogen in an environmentally friendly way. However, a sluggish anodic reaction, namely oxygen evolution reaction (OER), requires the use of an efficient electrocatalyst for achieving economic hydrogen production. Transition‐metal‐based layered double hydroxides (LDHs) are promising electrocatalysts for reducing the overpotential of OER in alkaline electrolyte, which is essential for efficient water electrolysis. Nickel‐iron‐based LDHs (Ni‐Fe LDH) have been regarded as the best OER electrocatalysts under alkaline conditions. Hence, a number of research studies have been conducted on further improving the electrocatalytic performance of Ni‐Fe LDH. Although the chemical blending of other transition metals with Ni‐Fe‐LDH is a simple and reliable strategy to enhance the OER activity of Ni‐Fe‐LDH, a systematic investigation on designing Ni‐Fe‐LDH with different additional elements is still lacking. In addition, the design of multi‐metallic LDH compound via only experimental method is very costly and time‐consuming process. In this study, atomic‐scale computational and experimental studies are performed to design OER electrocatalysts including unary, binary, and ternary LDH compounds consisting of Ni, Fe, Al, and Co. Density functional theory calculations predict that Ni‐Fe‐Co ternary LDH can lead to the lowest overpotential for alkaline OER among various computationally modeled LDH systems. Further, experimental verifications successfully demonstrate the computational prediction wherein Ni‐Fe‐Co‐LDH exhibits superior catalytic performance compared with Ni‐Fe‐LDH and benchmark IrO2 catalysts. Abstract : Ni‐Fe‐Co‐layered double hydroxide as efficient and robust electrocatalysts for alkaline oxygen evolution reaction: Computational atomic‐scale catalyst design and experimental verification. … (more)
- Is Part Of:
- International journal of energy research. Volume 46:Number 9(2022)
- Journal:
- International journal of energy research
- Issue:
- Volume 46:Number 9(2022)
- Issue Display:
- Volume 46, Issue 9 (2022)
- Year:
- 2022
- Volume:
- 46
- Issue:
- 9
- Issue Sort Value:
- 2022-0046-0009-0000
- Page Start:
- 11972
- Page End:
- 11988
- Publication Date:
- 2022-04-19
- Subjects:
- density functional theory -- electrocatalyst -- layered double hydroxide -- oxygen evolution reaction -- transition metals -- water splitting
Power resources -- Periodicals
Power (Mechanics) -- Periodicals
Power resources -- Research -- Periodicals
621.042 - Journal URLs:
- http://onlinelibrary.wiley.com/ ↗
- DOI:
- 10.1002/er.7965 ↗
- Languages:
- English
- ISSNs:
- 0363-907X
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4542.236000
British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
- 22064.xml