Rattle-type Au@NiCo LDH hollow core-shell nanostructures for nonenzymatic glucose sensing

2020 ◽  
Vol 858 ◽  
pp. 113810 ◽  
Author(s):  
Lili Wang ◽  
Xueli Miao ◽  
Yuning Qu ◽  
Cunpeng Duan ◽  
Bing Wang ◽  
...  
2012 ◽  
Vol 218 ◽  
pp. 6-14 ◽  
Author(s):  
Kejie Zhao ◽  
Matt Pharr ◽  
Lauren Hartle ◽  
Joost J. Vlassak ◽  
Zhigang Suo

2019 ◽  
Vol 30 (10) ◽  
pp. 9725-9734 ◽  
Author(s):  
T. Dayakar ◽  
K. Venkateswara Rao ◽  
Jinsub Park ◽  
Potharaju Krishna ◽  
P. Swaroopa ◽  
...  

2019 ◽  
Vol 95 ◽  
pp. 174-182 ◽  
Author(s):  
Miaomiao Cao ◽  
Hui Wang ◽  
Shan Ji ◽  
Qian Zhao ◽  
Bruno G. Pollet ◽  
...  

2015 ◽  
Vol 10 (1) ◽  
Author(s):  
Chi-Hang Tsai ◽  
Shih-Yun Chen ◽  
Jenn-Ming Song ◽  
Mitsutaka Haruta ◽  
Hiroki Kurata

2018 ◽  
Vol 396 ◽  
pp. 88-94 ◽  
Author(s):  
Songmin Zhang ◽  
Jiawen Wu ◽  
Jitong Wang ◽  
Wenming Qiao ◽  
Donghui Long ◽  
...  

2019 ◽  
Vol 25 (34) ◽  
pp. 3633-3644
Author(s):  
Nasrullah Shah ◽  
Saba Gul ◽  
Mazhar Ul-Islam

: Core-shell polymers represent a class of composite particles comprising of minimum two dissimilar constituents, one at the center known as a core which is occupied by the other called shell. Core-shell molecularly imprinting polymers (CSMIPs) are composites prepared via printing a template molecule (analyte) in the coreshell assembly followed by their elimination to provide the everlasting cavities specific to the template molecules. Various other types of CSMIPs with a partial shell, hollow-core and empty-shell are also prepared. Numerous methods have been reported for synthesizing the CSMIPs. CSMIPs composites could develop the ability to identify template molecules, increase the relative adsorption selectivity and offer higher adsorption capacity. Keen features are measured that permits these polymers to be utilized in numerous applications. It has been developed as a modern technique with the probability for an extensive range of uses in selective adsorption, biomedical fields, food processing, environmental applications, in utilizing the plant's extracts for further applications, and sensors. This review covers the approaches of developing the CSMIPs synthetic schemes, and their application with special emphasis on uses in the biomedical field, food care subjects, plant extracts analysis and in environmental studies.


Catalysts ◽  
2021 ◽  
Vol 11 (1) ◽  
pp. 72
Author(s):  
Christian Zambrzycki ◽  
Runbang Shao ◽  
Archismita Misra ◽  
Carsten Streb ◽  
Ulrich Herr ◽  
...  

Core-shell materials are promising functional materials for fundamental research and industrial application, as their properties can be adapted for specific applications. In particular, particles featuring iron or iron oxide as core material are relevant since they combine magnetic and catalytic properties. The addition of an SiO2 shell around the core particles introduces additional design aspects, such as a pore structure and surface functionalization. Herein, we describe the synthesis and application of iron-based core-shell nanoparticles for two different fields of research that is heterogeneous catalysis and water purification. The iron-based core shell materials were characterized by transmission electron microscopy, as well as N2-physisorption, X-ray diffraction, and vibrating-sample magnetometer measurements in order to correlate their properties with the performance in the target applications. Investigations of these materials in CO2 hydrogenation and water purification show their versatility and applicability in different fields of research and application, after suitable individual functionalization of the core-shell precursor. For design and application of magnetically separable particles, the SiO2 shell is surface-functionalized with an ionic liquid in order to bind water pollutants selectively. The core requires no functionalization, as it provides suitable magnetic properties in the as-made state. For catalytic application in synthesis gas reactions, the SiO2-stabilized core nanoparticles are reductively functionalized to provide the catalytically active metallic iron sites. Therefore, Fe@SiO2 core-shell nanostructures are shown to provide platform materials for various fields of application, after a specific functionalization.


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