Insight into the hydrogen oxidation electrocatalytic performance enhancement on Ni via oxophilic regulation of MoO2

2021 ◽  
Vol 54 ◽  
pp. 202-207
Author(s):  
Shaofeng Deng ◽  
Xupo Liu ◽  
Xuyun Guo ◽  
Tonghui Zhao ◽  
Yun Lu ◽  
...  
Author(s):  
Lulu An ◽  
Xu Zhao ◽  
Tonghui Zhao ◽  
Deli Wang

Anion exchange membrane fuel cell (AEMFC) is becoming highly attractive for hydrogen utilization owing to the advantages of employing economic catalysts in alkaline electrolytes. Nevertheless, the kinetics of anodic hydrogen...


2021 ◽  
Author(s):  
Kartik Sau ◽  
Tamio Ikeshoji ◽  
Godwill Mbiti Kanyolo ◽  
Titus Masese

<b>Although the fascinatingly rich crystal chemistry of honeycomb layered oxides has been accredited as the propelling force behind their remarkable electrochemistry, the atomistic mechanisms surrounding their operations remain unexplored. Thus, herein, we present an extensive molecular dynamics study performed systematically using a refined set of inter-atomic potential parameters of <i>A</i><sub>2</sub>Ni<sub>2</sub>TeO<sub>6</sub> (where <i>A</i> = Li, Na, and K). We demonstrate the effectiveness of the Vashishta-Rahman form of the interatomic potential in reproducing various structural and transport properties of this promising class of materials and predict an exponential increase in cationic diffusion with larger interlayer distances. The simulations further demonstrate the correlation between broadened inter-layer (inter-slab) distances associated with the larger ionic radii of K and Na compared to Li and the enhanced cationic conduction exhibited in K<sub>2</sub>Ni<sub>2</sub>TeO<sub>6</sub> and Na<sub>2</sub>Ni<sub>2</sub>TeO<sub>6</sub> relative to Li<sub>2</sub>Ni<sub>2</sub>TeO<sub>6</sub>. Whence, our findings connect lower potential energy barriers, favourable cationic paths and wider bottleneck size along the cationic diffusion channel within frameworks (comprised of larger mobile cations) to the improved cationic diffusion experimentally observed in honeycomb layered oxides. Furthermore, we explicitly study the role of inter-layer distance and cationic size in cationic diffusion. Our theoretical studies reveal the dominance of inter-layer distance over cationic size, a crucial insight into the further performance enhancement of honeycomb layered oxides.</b><br>


2021 ◽  
Author(s):  
Kartik Sau ◽  
Tamio Ikeshoji ◽  
Godwill Mbiti Kanyolo ◽  
Titus Masese

<b>Although the fascinatingly rich crystal chemistry of honeycomb layered oxides has been accredited as the propelling force behind their remarkable electrochemistry, the atomistic mechanisms surrounding their operations remain unexplored. Thus, herein, we present an extensive molecular dynamics study performed systematically using a reliable set of inter-atomic potential parameters of </b><i>A</i><sub>2</sub><b>Ni</b><sub>2</sub><b>TeO</b><sub>6</sub><b> (where </b><i>A</i><b> = Li, Na, and K). We demonstrate the effectiveness of the Vashishta-Rahman form of the inter-atomic potential in reproducing various structural and transport properties of this promising class of materials and predict an exponential increase in cationic diffusion with larger inter-layer distances. The simulations demonstrate the correlation between broadened inter-layer (inter-slab) distances associated with the larger ionic radii of K and Na compared to Li and the enhanced cationic conduction exhibited in K</b><sub>2</sub><b>Ni</b><sub>2</sub><b>TeO</b><sub>6</sub><b> and Na</b><sub>2</sub><b>Ni</b><sub>2</sub><b>TeO</b><sub>6</sub><b> relative to Li</b><sub>2</sub><b>Ni</b><sub>2</sub><b>TeO</b><sub>6</sub><b>. Whence, our findings connect lower potential energy barriers, favourable cationic paths and wider bottleneck size along the cationic diffusion channel within frameworks (comprised of larger mobile cations) to the improved cationic diffusion experimentally observed in honeycomb layered oxides. Furthermore, we elucidate the role of inter-layer distance and cationic size in cationic diffusion. Our theoretical studies reveal the dominance of inter-layer distance over cationic size, a crucial insight into the further performance enhancement of honeycomb layered oxides.</b><br>


2019 ◽  
Vol 11 (15) ◽  
pp. 14059-14065 ◽  
Author(s):  
Xiaodeng Wang ◽  
Mingyu Pi ◽  
Dingke Zhang ◽  
Haiyun Li ◽  
Jiajia Feng ◽  
...  

2019 ◽  
Vol 7 (7) ◽  
pp. 3161-3169 ◽  
Author(s):  
Yuanyuan Cong ◽  
Ian T. McCrum ◽  
Xueqiang Gao ◽  
Yang Lv ◽  
Shu Miao ◽  
...  

The excellent alkaline HOR electrocatalytic performance on Pd1−xIrx/N-C arises from the appropriate strength of hydrogen binding and the strongest oxophilic property.


2020 ◽  
Vol 22 (29) ◽  
pp. 16985-16997
Author(s):  
Sarwar Ahmad Pandit ◽  
Sajad Ahmad Bhat ◽  
Mudasir Ahmad Rather ◽  
Pravin P. Ingole ◽  
Mohsin Ahmad Bhat

The electrocatalytic performance of reduced graphene oxide supported metal nano-deposits toward the electro-dehalogenation of halocarbons in room temperature ionic liquids (RTILs) is related to the mechanistic aspects of the electroreduction.


2008 ◽  
Vol 22 (1) ◽  
pp. 90-108 ◽  
Author(s):  
Patsy Tremayne ◽  
Debra A. Ballinger

Ballroom dance has resurfaced worldwide as a highly popular competitive sport and might be added to Olympic medal competition for the 2012 London Games. This resurgence presents opportunities for sport psychologists to provide psychological-skills and performance-enhancement training for ballroom dancers at all competitive levels. Few sport psychologists have the personal experience, expertise, or an adequate knowledge base about the competitive-ballroom-dance environment to provide meaningful intervention strategies for participants. This article was developed to provide initial guidance for sport psychology professionals interested in working in this environment. An overview of the competitive-dance and ballroom-dance environment, strategies used by dance couples for enhanced mental preparation before and during dance competitions, and excerpts from an interview with an Australian championship-level couple provide readers insight into performance-enhancement strategies for DanceSport.


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