DSC Differential Spectrum Applied in the Study of Hydrogen Bonding Interaction in Aqueous Solution

Author(s):  
Xianru He ◽  
Shuwei Cai ◽  
Hui Yu ◽  
Qian Chen ◽  
Hailong Hou
Soft Matter ◽  
2019 ◽  
Vol 15 (32) ◽  
pp. 6530-6535 ◽  
Author(s):  
Tai-Bao Wei ◽  
Qin-Peng Zhang ◽  
Yan-Qing Fan ◽  
Peng-Peng Mao ◽  
Jiao Wang ◽  
...  

A novel supramolecular AIE π-gel (ONT) is constructed using a π–π stacking interaction and hydrogen bonding interaction, which could efficiently detect and separate metal ions.


2020 ◽  
Author(s):  
Hossein Khalilian ◽  
Gino A. DiLabio

Here, we report an exquisite strategy that the B12 enzymes exploit to manipulate the reactivity of their radical intermediate (Adenosyl radical). Based on the quantum-mechanic calculations, these enzymes utilize a little known long-ranged through space quantum Coulombic effect (QCE). The QCE causes the radical to acquire an electronic structure that contradicts the Aufbau Principle: The singly-occupied molecular orbital (SOMO) is no longer the highest-occupied molecular orbital (HOMO) and the radical is unable to react with neighbouring substrates. The dynamic nature of the enzyme and its structure is expected to be such that the reactivity of the radical is not restored until it is moved into close proximity of the target substrate. We found that the hydrogen bonding interaction between the nearby conserved glutamate residue and the ribose ring of Adenosyl radical plays a crucial role in manipulating the orbital ordering


2020 ◽  
Author(s):  
Hossein Khalilian ◽  
Gino A. DiLabio

Here, we report an exquisite strategy that the B12 enzymes exploit to manipulate the reactivity of their radical intermediate (Adenosyl radical). Based on the quantum-mechanic calculations, these enzymes utilize a little known long-ranged through space quantum Coulombic effect (QCE). The QCE causes the radical to acquire an electronic structure that contradicts the Aufbau Principle: The singly-occupied molecular orbital (SOMO) is no longer the highest-occupied molecular orbital (HOMO) and the radical is unable to react with neighbouring substrates. The dynamic nature of the enzyme and its structure is expected to be such that the reactivity of the radical is not restored until it is moved into close proximity of the target substrate. We found that the hydrogen bonding interaction between the nearby conserved glutamate residue and the ribose ring of Adenosyl radical plays a crucial role in manipulating the orbital ordering


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