hydrolysis reaction
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RSC Advances ◽  
2022 ◽  
Vol 12 (4) ◽  
pp. 2310-2318
Author(s):  
Huan Li ◽  
Feng Qin ◽  
Lijuan Huang ◽  
Wenjing Jia ◽  
Mingliang Zhang ◽  
...  

Although water is an ideal green solvent for organic synthesis, it is difficult for most biocatalysts to carry out transesterification reactions in water because of the reversible hydrolysis reaction.


2021 ◽  
Vol 247 ◽  
pp. 114728
Author(s):  
Jing Yao ◽  
Leilei Guo ◽  
Pengfei Zhu ◽  
Fusheng Yang ◽  
Hongli Yan ◽  
...  

2021 ◽  
pp. 118871
Author(s):  
Xianwei Zhao ◽  
Zhuochao Teng ◽  
Junjie Wang ◽  
Xiaohui Ma ◽  
Yanhui Sun ◽  
...  
Keyword(s):  

2021 ◽  
Vol 21 (9) ◽  
pp. 4931-4935
Author(s):  
Joo-Yeon Ha ◽  
Min-Seo Kim ◽  
Tae-Woo Kim ◽  
Ji-Seung Ryu ◽  
Hyun-Gyoo Shin ◽  
...  

The change in the crystallinity of Ce–Ti oxide nanocatalysts with different water contents was investigated in terms of the local atomic structure and the surface atomic concentration. The crystallization of TiO2, which was induced by the hydrolysis of the Ti precursor, was observed in the catalyst synthesized via a liquid phase reaction employing a mixture of ethanol and distilled water as the solvent. The hydrolysis reaction of the Ti precursor was impeded in the solvent mixture of ethanol and anhydrous ethanol. CeO2 nanocrystallization occurred due to the suppression of the TiO2 crystal growth. Low crystallinity of the catalyst synthesized in a single anhydrous ethanol solvent was observed through the broadened X-ray diffraction (XRD) peak and the diffused ring pattern in transmission electron microscopic (TEM) images. In addition, the Ce–O and Ce–Ce bond lengths of the catalyst synthesized using the single solvent decreased beyond those of the catalysts synthesized in the mixed solvent, indicating the amorphization of the catalyst. It was also verified that the inhibition of the precursor crystallization during the synthesis led to the enhanced dispersion of the nanocatalyst, compared to the stoichiometry of the surface atomic concentration.


Polymers ◽  
2021 ◽  
Vol 13 (12) ◽  
pp. 1902
Author(s):  
Bin Wang ◽  
Dihui Li ◽  
Guijun Xian ◽  
Chenggao Li

The durability of fiber-reinforced polymer (FRP) composites is significantly dependent on the structures and properties of the resin matrix. In the present paper, the effects of physical or chemical interactions between the molecular chain of the epoxy resin matrix and water molecules or alkaline groups on the water absorption, mechanical structures, and microstructures of epoxy resin samples were studied experimentally. The results showed that the water uptake curves of the epoxy resin immersed in water and an alkali solution over time presented a three-stage variation. At different immersion stages, the water uptake behavior of the resin showed unique characteristics owing to the coupling effects of the solution concentration gradient diffusion, molecular hydrolysis reaction, and molecular segment movement. In comparison with the water immersion, the alkali solution environment promoted the hydrolysis reaction of the epoxy resin molecular chain. After the immersion in water or the alkali solution for one month, the water uptake of the resin was close to saturate, and the viscoelasticity was observed to decrease significantly. The micropore and free volume space on the surface and in the interior of the resin gradually increased, while the original large-scale free volume space decreased. The tensile strength decreased to the lowest point after the immersion in water and the alkali solution for one month, and the decrease percentages at 20 °C and 60 °C water or 60 °C alkali solution were 24%, 28%, and 22%, respectively. Afterward, the tensile strength recovered with the further extension of immersion time. In addition, it can be found that the effect of the alkali solution and water on the tensile strength of the epoxy resin was basically the same.


Author(s):  
Xianhui Jian ◽  
Ke Xin ◽  
Jin Hu ◽  
Luning Zhang ◽  
Xuefeng Wang ◽  
...  

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