molecular separation
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Author(s):  
Jian Li ◽  
Pei Xiao ◽  
Yilin Xu ◽  
Liangliang Dong ◽  
Zhenyu Wang ◽  
...  

Author(s):  
Mengtao Tian ◽  
Lei Wang ◽  
Jin Wang ◽  
Shuchang Zheng ◽  
Fudi Wang ◽  
...  

2022 ◽  
Author(s):  
Cristina Chircov ◽  
Bogdan Stefan Vasile

Recent years have witnessed an extensive application of iron oxide nanoparticles within a wide variety of fields, including drug delivery, hyperthermia, biosensing, theranostics, and cell and molecular separation. Consequently, synthesis and characterization methods have continuously evolved to provide the possibility for controlling the physico-chemical and biological properties of the nanoparticles to better suit the envisaged applications. In this manner, this chapter aims to provide an extensive overview of the most recent progress made within the processes of iron oxide nanoparticle synthesis and characterization. Thus, the chapter will focus on novel and advanced approaches reported in the literature for obtaining standardized nanoparticles with controllable properties and effects. Specifically, it will emphasize the most recent progress made within the microwave-assisted, microfluidics, and green synthesis methods, as they have shown higher capacities of controlling the outcome nanoparticle properties.


2022 ◽  
Vol 427 ◽  
pp. 132070
Author(s):  
Jian Li ◽  
Lei Li ◽  
Yilin Xu ◽  
Junyong Zhu ◽  
Fei Liu ◽  
...  
Keyword(s):  

Author(s):  
Zhe Sun ◽  
Mehraj Ahmad ◽  
Zongxia Gao ◽  
Zhu Shan ◽  
Liangmao Xu ◽  
...  

The controllable ion-transportion in nanofluidic membranes is highly desirable for industrial applications, including energy harvesting, molecular separation, nanofiltration, etc. However, the nanofluidic materials synthesized using traditional approach still suffer from...


2021 ◽  
Author(s):  
Zhenggong Wang ◽  
Xiaofan Luo ◽  
Kuan Lu ◽  
Shouwen Zhu ◽  
Yanshao Yang ◽  
...  

Abstract Trade-off between permeability and nanometer-level selectivity is an inherent shortcoming of membrane-based separation of molecules, while most highly porous materials with high adsorption capacity lack solution processability and stability for achieving adsorption-based molecule separation. We hereby report a hydrophilic amidoxime modified polymer of intrinsic microporosity (AOPIM-1) as a membrane adsorption material to selectively adsorb and separate small organic molecules from water with ultrahigh processing capacity. The membrane adsorption capacity for Rhodamine B reaches 26.114 g m−2, 10~1000 times higher than previously reported adsorptive membranes. Meanwhile, the membrane achieves >99.9% removal of various nano-sized organic molecules with water flux 2 orders of magnitude higher than typical pressure-driven membranes of similar rejections. This work confirms the feasibility of microporous polymers for membrane adsorption with unprecedented capacity, and provides the possibility of adsorptive membranes for molecular separation.


Author(s):  
Nikos Kyriakou ◽  
Louis Winnubst ◽  
Martin Drobek ◽  
Sissi de Beer ◽  
Arian Nijmeijer ◽  
...  

2021 ◽  
Vol 1 (2) ◽  
pp. 100008
Author(s):  
Digambar B. Shinde ◽  
Li Cao ◽  
Xiaowei Liu ◽  
Dinga A.D. Wonanke ◽  
Zongyao Zhou ◽  
...  

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