Elucidating the activity, mechanism and application of selective electrosynthesis of ammonia from nitrate on cobalt phosphide

Author(s):  
Shenghua Ye ◽  
Zhida Chen ◽  
Guikai Zhang ◽  
Wenda Chen ◽  
Chao Peng ◽  
...  

Electrochemical reduction of nitrate to ammonia (nitrate reduction reaction, NO3-RR) under ambient conditions, which overcomes the drawbacks of energy-intensive Haber−Bosch reaction and low-efficient N2 electroreduction, is one of the alternatives...

2021 ◽  
Author(s):  
Damilola Ologunagba ◽  
Shyam Kattel

Electrochemical nitrogen reduction reaction (ENRR) at ambient conditions is beneficial compared to energy intensive thermochemical Haber-Bosch process for NH3 production. Here, periodic density functional theory (DFT) calculations are carried out...


2021 ◽  
Author(s):  
Qing-Ling Hong ◽  
Jia Zhou ◽  
Quan-Guo Zhai ◽  
Yucheng Jiang ◽  
Mancheng Hu ◽  
...  

High-quality CoP nanorings (CoP NRs) are easily achieved by phosphorating treatment of CoOOH nanorings, which reveal high activity towards hydrogen evolution reaction and nitrate electrocatalytic reduction reaction due to substantial...


Author(s):  
Jing Geng ◽  
Sihan Ji ◽  
Hui Xu ◽  
Cuijiao Zhao ◽  
Shengbo Zhang ◽  
...  

In this work, oxygen vacancy-rich CuOX nanoparticles are fabricated by a laser-irradiation technique, and employed in a fluidized electrocatalysis system for the nitrate reduction reaction (NtrRR) to ammonia. As a...


2019 ◽  
Author(s):  
Sahithi Ananthaneni ◽  
Rees Rankin

<div>Electrochemical reduction of CO2 to useful chemical and fuels in an energy efficient way is currently an expensive and inefficient process. Recently, low-cost transition metal-carbides (TMCs) are proven to exhibit similar electronic structure similarities to Platinum-Group-Metal (PGM) catalysts and hence can be good substitutes for some important reduction reactions. In this work, we test graphenesupported WC (Tungsten Carbide) nanocluster as an electrocatalyst for the CO2 reduction reaction. Specifically, we perform DFT studies to understand various possible reaction mechanisms and determine the lowest thermodynamic energy landscape of CO2 reduction to various products such as CO, HCOOH, CH3OH, and CH4. This in-depth study of reaction energetics could lead to improvements and develop more efficient electrocatalysts for CO2 reduction.<br></div>


2019 ◽  
Author(s):  
Du Sun ◽  
yunfei wang ◽  
Kenneth Livi ◽  
chuhong wang ◽  
ruichun luo ◽  
...  

<div> <p>The synthesis of alloys with long range atomic scale ordering (ordered intermetallics) is an emerging field of nanochemistry. Ordered intermetallic nanoparticles are useful for a wide variety of applications such as catalysis, superconductors, and magnetic devices. However, the preparation of nanostructured ordered intermetallics is challenging in comparison to disordered alloys, hindering progress in materials development. We report a process for converting colloidally synthesized ordered intermetallic PdBi<sub>2</sub> to ordered intermetallic Pd<sub>3</sub>Bi nanoparticles under ambient conditions by an electrochemically induced phase transition. The low melting point of PdBi<sub>2</sub> corresponds to low vacancy formation energies which enables the facile removal of the Bi from the surface, while simultaneously enabling interdiffusion of the constituent atoms via a vacancy diffusion mechanism under ambient conditions. The resulting phase-converted ordered intermetallic Pd<sub>3</sub>Bi exhibits 11x and 3.5x higher mass activty and high methanol tolerance for the oxygen reduction reaction compared to Pt/C and Pd/C, respectively,which is the highest reported for a Pd-based catalyst, to the best of our knowledge. These results establish a key development in the synthesis of noble metal rich ordered intermetallic phases with high catalytic activity, and sets forth guidelines for the design of ordered intermetallic compounds under ambient conditions.</p> </div>


2021 ◽  
pp. 126628
Author(s):  
Ling Fang ◽  
Sha Wang ◽  
Cheng Song ◽  
Xiaohui Yang ◽  
Yuke Li ◽  
...  

2021 ◽  
pp. 133035
Author(s):  
Xiaoxia Zhou ◽  
Erhong Song ◽  
Zhaoyu Kuang ◽  
Zhe Gao ◽  
Han Zhao ◽  
...  

2020 ◽  
Vol 65 (10) ◽  
pp. 796-802 ◽  
Author(s):  
Dong-Rui Yang ◽  
Ling Liu ◽  
Qian Zhang ◽  
Yi Shi ◽  
Yue Zhou ◽  
...  

Author(s):  
Peiei Li ◽  
Dan Cheng ◽  
Xiaohua Zhu ◽  
Meiling Liu ◽  
Youyu Zhang

Abstract Compared with the traditional Haber-Bosch process, electrochemical N2-to-NH3 reduction affords an eco-friendly and sustainable alternative to ambient NH3 synthesis with the aid of efficient electrocatalysts. In this work, partial oxidation of MnS to obtain the MnS-Mn3O4 is proved as a promising noble-free electrocatalysts of N2to NH3 fixation at ambient conditions. When tested in 0.1 M Na2SO4, the electrochemical N2 reduction reaction performance of MnS-Mn3O4 is improved comparing with the MnS, which achieves large NH3 yield of 16.74 μg h–1 mgcat.–1 and a high Faradaic efficiency of 5.72%. It also exhibits excellent selectivity of N2-to-NH3 and strong long-term electrochemical stabil


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