phthalic anhydride
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Author(s):  
Xiaojie Shao ◽  
Lijuan Su ◽  
Jiaojiao Zhang ◽  
Zishang Tian ◽  
Ning Zhang ◽  
...  

Author(s):  
Thaisa Cardoso de Oliveira ◽  
Antônia Carla de Jesus Oliveira ◽  
Yuri Basílio Gomes Patriota ◽  
Luise Lopes Chaves ◽  
Fabio de Oliveira Silva Ribeiro ◽  
...  

2021 ◽  
Vol 89 (8-2) ◽  
Author(s):  
Kamola Ziyadullayeva ◽  
Suvonkul Nurmonov ◽  
Aypara Kurbanova ◽  
Nargiza Axmedova

2021 ◽  
Vol 49 ◽  
pp. 101558
Author(s):  
Jiaxin Liang ◽  
Shuxian Ye ◽  
Wenjing Wang ◽  
Congxiao Fan ◽  
Shuanjin Wang ◽  
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2021 ◽  
Vol 13 (1) ◽  
pp. 148-166
Author(s):  
Anud M. A. Efhema1 ◽  

Amino glycoside derivation including, Neomycin, Streptomycin, Kanamycin and Gentamycin with special reagents, which are benzoylchloride; benzene sulfonyl chloride and phthalic anhydride were made to enhance Uv-detectability for HPLC analysis. But there are many problems facing pre column derivation and in order to solve this, the conductivity of antibiotic derivatives were used to calculate the dissociation constant and the hydrolysis rate which determined concern type reaction. In addition the characteristics those controlling the hydrolysis of antibiotic-derivatives were investigated.


Polymers ◽  
2021 ◽  
Vol 13 (11) ◽  
pp. 1785
Author(s):  
Wiktor Bukowski ◽  
Agnieszka Bukowska ◽  
Aleksandra Sobota ◽  
Maciej Pytel ◽  
Karol Bester

The effect of ligand structure on the catalytic activity of amine-bis(phenolate) chromium(III) complexes in the ring-opening copolymerization of phthalic anhydride and a series epoxides was studied. Eight complexes differing in the donor-pendant group (R1) and substituents (R2) in phenolate units were examined as catalysts of the model reaction between phthalic anhydride and cyclohexane oxide in toluene. They were used individually or as a part of the binary catalytic systems with nucleophilic co-catalysts. The co-catalyst was selected from the following organic bases: PPh3, DMAP, 1-butylimidazole, or DBU. The binary catalytic systems turned out to be more active than the complexes used individually, and DMAP proved to be the best choice as a co-catalyst. When the molar ratio of [PA]:[epoxide]:[Cr]:[DMAP] = 250:250:1:1 was applied, the most active complex (R1-X = CH2NMe2, R2 = F) allowed to copolymerize phthalic anhydride with differently substituted epoxides (cyclohexene oxide, 4-vinylcyclohexene oxide, styrene oxide, phenyl glycidyl ether, propylene oxide, butylene oxide, and epichlorohydrin) within 240 min at 110 °C. The resulting polyesters were characterized by Mn up to 20.6 kg mol−1 and narrow dispersity, and they did not contain polyether units.


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