scholarly journals A Protocol for the Computational Design of High Affi nity Molecularly Imprinted Polymer Synthetic Receptors

2017 ◽  
Vol 3 (1) ◽  
pp. 001-007 ◽  
Author(s):  
K Karim ◽  
T Cowen ◽  
A Guerreiro ◽  
E Piletska ◽  
MJ Whitcombe
2012 ◽  
Vol 622-623 ◽  
pp. 229-235
Author(s):  
Kiran Kumar Tadi ◽  
Ramani V. Motghare

Molecular imprinting technology is a convenient approach for preparing synthetic receptors that possesses user defined recognition properties. Oxalic acid imprinted bulk polymer was synthesized by thermal initiated free radical co-polymerization of oxalic acid (template) with two different functional monomers (acrylamide and methacrylic acid) and ethylene glycol dimethacrylate as crosslinker, using acetonitrile (porogen) as solvent. Scanning electron microscopy and FT-IR spectra confirmed the formation of molecularly imprinted polymer (MIP) with acrylamide. The synthesized MIP(ACR)efficiently adsorbed oxalic acid from aqueous solutions. The binding parameters of molecularly imprinted polymer and non-imprinted polymer were compared by Langmuir-Freundlich adsorption (LF) isotherm.


2017 ◽  
Vol 52 (8) ◽  
pp. 1441-1453 ◽  
Author(s):  
Ferdia Bates ◽  
Mirko Busato ◽  
Elena Piletska ◽  
Michael J. Whitcombe ◽  
Kal Karim ◽  
...  

Molecules ◽  
2021 ◽  
Vol 26 (7) ◽  
pp. 1891
Author(s):  
Shendi Suryana ◽  
Mutakin ◽  
Yudi Rosandi ◽  
Aliya Nur Hasanah

Molecularly imprinted polymer (MIP) computational design is expected to become a routine technique prior to synthesis to produce polymers with high affinity and selectivity towards target molecules. Furthermore, using these simulations reduces the cost of optimizing polymerization composition. There are several computational methods used in MIP fabrication and each requires a comprehensive study in order to select a process with results that are most similar to properties exhibited by polymers synthesized through laboratory experiments. Until now, no review has linked computational strategies with experimental results, which are needed to determine the method that is most appropriate for use in designing MIP with high molecular recognition. This review will present an update of the computational approaches started from 2016 until now on quantum mechanics, molecular mechanics and molecular dynamics that have been widely used. It will also discuss the linear correlation between computational results and the polymer performance tests through laboratory experiments to examine to what extent these methods can be relied upon to obtain polymers with high molecular recognition. Based on the literature search, density functional theory (DFT) with various hybrid functions and basis sets is most often used as a theoretical method to provide a shorter MIP manufacturing process as well as good analytical performance as recognition material.


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