A high-capacity nanocellulose aerogel uniformly immobilized with a high loading of nano-La(OH)3 for phosphate removal

2022 ◽  
pp. 134439
Author(s):  
Zhanghui Wang ◽  
Daowei Xia ◽  
Shijie Cui ◽  
Weipeng Yu ◽  
Bingtao Wang ◽  
...  
2021 ◽  
Vol 380 ◽  
pp. 138201
Author(s):  
Xiao Zheng ◽  
Fangfang Zhao ◽  
Lei Ma ◽  
Ruixian Tang ◽  
Yanru Dong ◽  
...  

2016 ◽  
Vol 89 (7) ◽  
pp. 1183-1188 ◽  
Author(s):  
Mao-xiang Jing ◽  
Hong-ai Zhai ◽  
Zhi-chao Pi ◽  
Jing-quan Li ◽  
Li-li Chen ◽  
...  

Nanomaterials ◽  
2021 ◽  
Vol 11 (12) ◽  
pp. 3342
Author(s):  
Yee-Jun Quay ◽  
Sheng-Heng Chung

Electrochemical lithium-sulfur batteries engage the attention of researchers due to their high-capacity sulfur cathodes, which meet the increasing energy-density needs of next-generation energy-storage systems. We present here the design, modification, and investigation of a carbon nanofoam as the interlayer in a lithium-sulfur cell to enable its high-loading sulfur cathode to attain high electrochemical utilization, efficiency, and stability. The carbon-nanofoam interlayer features a porous and tortuous carbon network that accelerates the charge transfer while decelerating the polysulfide diffusion. The improved cell demonstrates a high electrochemical utilization of over 80% and an enhanced stability of 200 cycles. With such a high-performance cell configuration, we investigate how the battery chemistry is affected by an additional polysulfide-trapping MoS2 layer and an additional electron-transferring graphene layer on the interlayer. Our results confirm that the cell-configuration modification brings major benefits to the development of a high-loading sulfur cathode for excellent electrochemical performances. We further demonstrate a high-loading cathode with the carbon-nanofoam interlayer, which attains a high sulfur loading of 8 mg cm−2, an excellent areal capacity of 8.7 mAh cm−2, and a superior energy density of 18.7 mWh cm−2 at a low electrolyte-to-sulfur ratio of 10 µL mg−1.


Nanoscale ◽  
2019 ◽  
Vol 11 (20) ◽  
pp. 10045-10055 ◽  
Author(s):  
Ming Chen ◽  
Miaomiao Hu ◽  
Xiubo Xie ◽  
Tong Liu

A Mg92V8@C nanocomposite with over 94% loading shows high capacity and superb kinetics from the synergetic effects of nanoconfinement and the V catalyst.


Author(s):  
Shaohua Lu ◽  
Weidong Hu ◽  
Xiaojun Hu

Due to their low cost and improved safety compared to lithium-ion batteries, sodium-ion batteries have attracted worldwide attention in recent decades.


1987 ◽  
Vol 58 (03) ◽  
pp. 936-942 ◽  
Author(s):  
Lindsey A Miles ◽  
Edward F Plow

SummaryGlu-plasminogen binds to platelets; the monocytoid line, U937, and the human fetal fibroblast line, GM1380 bind both plasminogen and its activator, urokinase. This study assesses the interaction of these fibrinolytic proteins with circulating human blood cells. Plasminogen bound minimally to red cells but bound saturably and reversibly to monocytes, granulocytes and lymphocytes with apparent Kd values of 0.9-1.4 μM. The interactions were of high capacity with 1.6 to 49 × 105 sites/cell and involved the lysine binding sites of plasminogen. Both T cells and non-rosetting lymphocytes and two B cell lines saturably bound plasminogen. Urokinase bound saturably to gianulocytes, monocytes, non-rosetting lymphocytes and a B cell line, but minimally to T cells, platelets and red cells. Therefore, plasminogen binding sites of high capacity, of similar affinities, and with common recognition specificities are expressed by many peripheral blood cells. Urokinase receptors are also widely distributed, but less so than plasminogen binding sites. The binding ol plasminogen and/ or urokinase to these cells may lead to generation of cell- associated proteolytic activity which contributes to a variety of cellular functions.


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