An Interfacial Electron Transport Bridges to Fuel CO2 Photoreduction Via In-Situ Reconstruction of Black Bi2MoO6/BiO2-x Heterojunction

2021 ◽  
pp. 132204
Author(s):  
Xingwang Zhu ◽  
Zhaolong Wang ◽  
Kang Zhong ◽  
Qidi Li ◽  
Penghui Ding ◽  
...  
2021 ◽  
Author(s):  
Zhikai Zhao ◽  
Chenyang Guo ◽  
Lifa Ni ◽  
Xueyan Zhao ◽  
Surong Zhang ◽  
...  

We develop a method based on the mechanically controllable break junction technique to investigate the electron transport properties of single molecular junctions upon fiber waveguided light. In our strategy, a...


2014 ◽  
Vol 48 (3) ◽  
pp. 292-299 ◽  
Author(s):  
J. Touma ◽  
F. Cochennec ◽  
J. Parisot ◽  
A. Fialaire Legendre ◽  
J.-P. Becquemin ◽  
...  

2021 ◽  
Vol 137 ◽  
pp. 111177
Author(s):  
Chi Chen ◽  
Jingpeng Jin ◽  
Shengtao Chen ◽  
Tingxia Wang ◽  
Jiangrong Xiao ◽  
...  

2018 ◽  
Vol 67 (2) ◽  
pp. 468-477 ◽  
Author(s):  
Sabrina Ben Ahmed ◽  
Adrien Louvancourt ◽  
Guillaume Daniel ◽  
Pierre Combe ◽  
Ambroise Duprey ◽  
...  

ChemCatChem ◽  
2018 ◽  
Vol 10 (20) ◽  
pp. 4578-4585 ◽  
Author(s):  
Yanan Wang ◽  
Yiqing Zeng ◽  
Shipeng Wan ◽  
Wei Cai ◽  
Fujiao Song ◽  
...  

2018 ◽  
Vol 30 (43) ◽  
pp. 1804333 ◽  
Author(s):  
Gao Chen ◽  
Zhiwei Hu ◽  
Yanping Zhu ◽  
Binbin Gu ◽  
Yijun Zhong ◽  
...  

Author(s):  
Biao Zhu ◽  
Qianxin Xu ◽  
Xiaoyan Bao ◽  
Dawei Lu ◽  
Hao Yin ◽  
...  

The development of efficient and stable photocatalyst to solve environmental issues is essential and remains a big challenge. In this work, flower-like CoNiFe-LDH is deposited in situ on g-C3N4 nanosheets,...


1990 ◽  
Vol 259 (6) ◽  
pp. C889-C896 ◽  
Author(s):  
R. M. McAllister ◽  
R. L. Terjung

Electron transport capacity of skeletal muscle was inhibited in situ in an acute dose-dependent manner with myxothiazol, a tight-binding inhibitor of ubiquinone-cytochrome c reductase, complex III of the respiratory chain. Peak oxygen consumption of rat hindlimb muscle was determined via consecutive 10-min isometric contraction (100 ms at 100 Hz) periods of increasing energy demands (4, 8, 15, 30, 45, and 60 tetani/min), using an isolated hindlimb preparation perfused with a high oxygen delivery (approximately 6-8 mumol.min-1.g-1). Peak oxygen consumption decreased from 4.61 +/- 0.19 mumol.min-1.g-1 (control) in a dose-dependent manner to 0.73 +/- 0.07 mumol.min-1.g-1 at 0.50 microM myxothiazol in blood. Oxygen extraction decreased from 65 to 12% of delivered oxygen. Furthermore, the reduction in peak respiratory rate became evident at lower energy demands of the contraction sequence. Myxothiazol inhibition of respiration was not dependent on the presence of muscle contractions but was evident when mitochondria were uncoupled with carbonyl cyanide m-chlorophenylhydrazone. A 50% effective dosage (ED50) of 0.21 microM myxothiazol for inhibition of peak oxygen consumption closely resembled the inhibition of NADH-cytochrome c reductase activity (ED50 of 0.27 microM) determined from homogenates of the same muscles. This suggests that the peak oxygen consumption of skeletal muscle is tightly coupled to the capacity for electron transport evaluated by flux through NADH-cytochrome c reductase. If the enzyme activity measured in vitro correctly represents available enzymatic capacity within contracting muscle, approximately 75% of electron transport capacity for handling reducing equivalents generated from NADH is utilized during peak oxygen consumption of rat hindlimb muscle contracting in situ.


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