Metal–organic framework-derived MnO/CoMn2O4@N–C nanorods with nanoparticle interstitial decoration in core@shell structure as improved bifunctional electrocatalytic cathodes for Li–O2 batteries. (1st April 2020)
- Record Type:
- Journal Article
- Title:
- Metal–organic framework-derived MnO/CoMn2O4@N–C nanorods with nanoparticle interstitial decoration in core@shell structure as improved bifunctional electrocatalytic cathodes for Li–O2 batteries. (1st April 2020)
- Main Title:
- Metal–organic framework-derived MnO/CoMn2O4@N–C nanorods with nanoparticle interstitial decoration in core@shell structure as improved bifunctional electrocatalytic cathodes for Li–O2 batteries
- Authors:
- Chatterjee, Amrita
Or, Siu Wing - Abstract:
- Abstract: Core@shell-structured, hierarchically porous manganese oxide/cobalt manganite@nitrogen-doped carbon (MnO/CoMn2 O4 @N–C) nanorods with interstitially decorated CoMn2 O4 nanoparticles are synthesized via one-step carbonization of metal–organic framework (MOF)-coated α˗manganese oxide (α-MnO2 @ZIF-67) nanorods and are evaluated as bifunctional electrocatalytic cathodes for Li–O2 batteries (LOBs) to improve the bifunctionality, specific discharge capacity, and cyclability of α˗MnO2 nanorod cathode-based LOBs. The MnO/CoMn2 O4 @N–C nanorods feature a MnO nanorod core with CoMn2 O4 nanoparticle interstitial decoration, both coated by an N–C conductive shell. The MnO core renders Mn active sites and oxygen vacancies, while the CoMn2 O4 interstitial decoration gives additional Mn, Co active sites, thereby enhancing bifunctional electrocatalytic ORR–OER. The N–C shell increases electronic conductivity, hierarchical porosity, specific surface area, and protects the core and interstitial decoration against lithium peroxide (Li2 O2 ) passivation. The improved structural features allow the MnO/CoMn2 O4 @N–C nanorod cathode-based LOB cells to exhibit superior full specific discharge capacity of 8, 625 mAh·g −1 and cyclability of 48 discharge–charge cycles at 200 mA·g −1 specific current and 2000 mAhg −1 limited specific discharge capacity compared to their α˗MnO2 nanorod counterparts. An ORR–OER mechanism is proposed to describe the interesting formation of particle- andAbstract: Core@shell-structured, hierarchically porous manganese oxide/cobalt manganite@nitrogen-doped carbon (MnO/CoMn2 O4 @N–C) nanorods with interstitially decorated CoMn2 O4 nanoparticles are synthesized via one-step carbonization of metal–organic framework (MOF)-coated α˗manganese oxide (α-MnO2 @ZIF-67) nanorods and are evaluated as bifunctional electrocatalytic cathodes for Li–O2 batteries (LOBs) to improve the bifunctionality, specific discharge capacity, and cyclability of α˗MnO2 nanorod cathode-based LOBs. The MnO/CoMn2 O4 @N–C nanorods feature a MnO nanorod core with CoMn2 O4 nanoparticle interstitial decoration, both coated by an N–C conductive shell. The MnO core renders Mn active sites and oxygen vacancies, while the CoMn2 O4 interstitial decoration gives additional Mn, Co active sites, thereby enhancing bifunctional electrocatalytic ORR–OER. The N–C shell increases electronic conductivity, hierarchical porosity, specific surface area, and protects the core and interstitial decoration against lithium peroxide (Li2 O2 ) passivation. The improved structural features allow the MnO/CoMn2 O4 @N–C nanorod cathode-based LOB cells to exhibit superior full specific discharge capacity of 8, 625 mAh·g −1 and cyclability of 48 discharge–charge cycles at 200 mA·g −1 specific current and 2000 mAhg −1 limited specific discharge capacity compared to their α˗MnO2 nanorod counterparts. An ORR–OER mechanism is proposed to describe the interesting formation of particle- and film-type Li2 O2 deposits at different cycles for the MnO/CoMn2 O4 @N–C nanorod cathodes. Such MOF-derived, interstitial nanoparticle-decorated nanoarchitectures can lead to high-performance tunable bifunctional electrocatalysts. Graphical abstract: Image 1 Highlights: MOF-derived core@shell MXNC nanorods with interstitial decoration are developed. Mn, Co, and oxygen vacancies from core and interstitial impart bifunctionality. Conductive high surface area N–C shell protects the core against passivation. MXNC nanorods show higher cycles and capacity as LOB cathodes than α˗MnO2 nanorods. MXNC nanorods can lead to high-performance tunable bifunctional electrocatalysts. … (more)
- Is Part Of:
- Electrochimica acta. Volume 338(2020)
- Journal:
- Electrochimica acta
- Issue:
- Volume 338(2020)
- Issue Display:
- Volume 338, Issue 2020 (2020)
- Year:
- 2020
- Volume:
- 338
- Issue:
- 2020
- Issue Sort Value:
- 2020-0338-2020-0000
- Page Start:
- Page End:
- Publication Date:
- 2020-04-01
- Subjects:
- Bifunctional -- Electrocatalytic cathodes -- Core@shell structure -- Metal–organic framework -- Nanoparticle interstitial decoration -- Lithium-oxygen batteries
Electrochemistry -- Periodicals
Electrochemistry, Industrial -- Periodicals
541.37 - Journal URLs:
- http://www.sciencedirect.com/science/journal/00134686 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.electacta.2020.135809 ↗
- Languages:
- English
- ISSNs:
- 0013-4686
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 3698.950000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 12962.xml