Direct conversion of coordination compounds into Ni2P nanoparticles entrapped in 3D mesoporous graphene for an efficient hydrogen evolution reaction. (21st December 2016)
- Record Type:
- Journal Article
- Title:
- Direct conversion of coordination compounds into Ni2P nanoparticles entrapped in 3D mesoporous graphene for an efficient hydrogen evolution reaction. (21st December 2016)
- Main Title:
- Direct conversion of coordination compounds into Ni2P nanoparticles entrapped in 3D mesoporous graphene for an efficient hydrogen evolution reaction
- Authors:
- Jeoung, Sungeun
Seo, Bora
Hwang, Jeong Min
Joo, Sang Hoon
Moon, Hoi Ri - Abstract:
- Abstract : 5 nm-sized Ni2 P nanoparticles entrapped in 3D mesoporous graphene (Ni2 P@mesoG) were synthesized in situ via [Ni2 (EDTA)] thermolysis, followed by phosphidation. Abstract : This paper reports a simple preparation route to a composite of small Ni2 P nanoparticles (NPs) entrapped in 3D mesoporous graphene by the thermal conversion of a coordination compound followed by phosphidation. Recently, transition metal phosphides (TMPs) have gained increasing attention owing to their promising potential as non-precious metal catalysts in the hydrogen evolution reaction (HER). In order to enhance the catalytic activity of TMPs, researchers have sought to synthesize small TMP NPs to increase the catalytically active surface area. Although surfactant-mediated syntheses can produce small TMP NPs, a cumbersome surfactant removal step is necessary to generate catalytically active clean surfaces. Interfacing TMP NPs with carbon nanomaterials is another promising approach to boost the catalytic performance by providing high electrical conductivity and durability. However, the synthesis of composites of TMP NPs and carbon demands multiple synthetic steps, including the preparation of TMP NPs, synthesis of carbon nanomaterials, and dispersion of TMP NPs onto the carbon support. The essence of our approach toward the 3D graphene encapsulating Ni2 P NPs (Ni2 P@mesoG) lies in the utilization of the conversion phenomenon of [Ni2 (EDTA)] (EDTA = ethylenediaminetetraacetate). TheAbstract : 5 nm-sized Ni2 P nanoparticles entrapped in 3D mesoporous graphene (Ni2 P@mesoG) were synthesized in situ via [Ni2 (EDTA)] thermolysis, followed by phosphidation. Abstract : This paper reports a simple preparation route to a composite of small Ni2 P nanoparticles (NPs) entrapped in 3D mesoporous graphene by the thermal conversion of a coordination compound followed by phosphidation. Recently, transition metal phosphides (TMPs) have gained increasing attention owing to their promising potential as non-precious metal catalysts in the hydrogen evolution reaction (HER). In order to enhance the catalytic activity of TMPs, researchers have sought to synthesize small TMP NPs to increase the catalytically active surface area. Although surfactant-mediated syntheses can produce small TMP NPs, a cumbersome surfactant removal step is necessary to generate catalytically active clean surfaces. Interfacing TMP NPs with carbon nanomaterials is another promising approach to boost the catalytic performance by providing high electrical conductivity and durability. However, the synthesis of composites of TMP NPs and carbon demands multiple synthetic steps, including the preparation of TMP NPs, synthesis of carbon nanomaterials, and dispersion of TMP NPs onto the carbon support. The essence of our approach toward the 3D graphene encapsulating Ni2 P NPs (Ni2 P@mesoG) lies in the utilization of the conversion phenomenon of [Ni2 (EDTA)] (EDTA = ethylenediaminetetraacetate). The thermolysis of [Ni2 (EDTA)] at 600 °C produces a composite of single-crystalline 5 nm-sized Ni NPs individually entrapped in 3D mesoG (Ni@mesoG), and the following phosphidation completely converts the Ni NPs to single-crystalline Ni2 P NPs in mesoG (Ni2 P@mesoG) without agglomeration. This solvent-free thermal conversion route to the Ni2 P@mesoG composite is simple and scalable. Notably, graphitic shell layers in Ni2 P@mesoG stabilize small Ni2 P NPs possessing a large active surface area, and facilitate the electron transfer due to the intimate contact between them. Consequently, the use of Ni2 P@mosoG exhibits superior electrocatalytic HER activity and durability in both strong acidic and basic media. … (more)
- Is Part Of:
- Materials chemistry frontiers. Volume 1:Number 5(2017)
- Journal:
- Materials chemistry frontiers
- Issue:
- Volume 1:Number 5(2017)
- Issue Display:
- Volume 1, Issue 5 (2017)
- Year:
- 2017
- Volume:
- 1
- Issue:
- 5
- Issue Sort Value:
- 2017-0001-0005-0000
- Page Start:
- 973
- Page End:
- 978
- Publication Date:
- 2016-12-21
- Subjects:
- Materials science -- Periodicals
Chemistry -- Periodicals
540 - Journal URLs:
- http://www.rsc.org/journals-books-databases/about-journals/materials-chemistry-frontiers/ ↗
http://www.rsc.org/ ↗ - DOI:
- 10.1039/c6qm00269b ↗
- Languages:
- English
- ISSNs:
- 2052-1529
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 5394.107200
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 4543.xml