Exploring boratrane's potential to enhance the thermal stability of phenol-formaldehyde resins by borate bridge as a crosslinker and the mechanistic formation of boron species in carbonaceous materials: A comprehensive study

被引:0
|
作者
Wongnongwa, Yutthana [1 ]
Pithakratanayothin, Sakollapath [2 ,3 ]
Chaisuwan, Thanyalak [4 ]
Tongsri, Ruangdaj [2 ]
Buarod, Eumporn [5 ]
Yotkaew, Thanyaporn [2 ]
Krataitong, Rungtip [2 ]
机构
[1] Natl Elect & Comp Technol Ctr NECTEC, NSTDA Supercomp Ctr ThaiSC, 114 Thailand Sci Pk TSP,Phahonyothin Rd, Khlong Nueng 12120, Pathum Thani, Thailand
[2] Natl Met & Mat Technol Ctr, 114 Thailand Sci Pk TSP,Phahonyothin Rd, Khlong Luang 12120, Pathum Thani, Thailand
[3] Excellent Computat Chem Ctr, Ham Chem, Theaparak Rd, Meung 10270, Samutprakarn, Thailand
[4] Chulalongkorn Univ, Petr & Petrochem Coll, 254 Soi Chulalongkorn 12, Bangkok 10330, Thailand
[5] Natl Energy Technol Ctr, Clean Fuel Technol & Adv Chem Res Team, Low Carbon Energy Res Grp, 114 Thailand Sci Pk TSP,Phahonyothin Rd, Khlong Nueng 12120, Pathum Thani, Thailand
关键词
Boratrane; DFT-calculation; Radical intermediates; Radical mechanism; ELECTRONIC POPULATION ANALYSIS; REACTIVITY; PYROLYSIS; MOLECULES; REAXFF;
D O I
10.1016/j.polymdegradstab.2024.110983
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
In advanced material science, we explore the potential of boratrane, a promising agent for enhancing thermal stability. By combining rigorous Density Functional Theory (DFT) calculations with groundbreaking experimental analyses, we reveal the intricate interplay of radical intermediates and mechanisms underlying the thermal evolution of boratrane-infused materials. Our innovative approach illuminates dynamic structural transformations and elucidates boratrane's pivotal role in fortifying thermal resilience. The DFT calculations identify radical intermediates and mechanisms of thermal degradation, highlighting the role of borate bridges in delocalizing it-electrons in aromatic rings through Gibbs free energy (Delta GRXN), Highest Occupied Molecular Orbital (HOMO), Lowest Unoccupied Molecular Orbital (LUMO), and electrostatic potential (ESP) analyses. Fukui function analysis provides insights into the reactivity of these structures towards free radical attacks. Our findings demonstrate that boratrane-modified resins exhibit a stable BO4- structure, which prevents selfcondensation of boratrane to B2O3 and enhances the thermal stability of oxygenated resins. This improvement is due to the formation of intramolecular hydrogen bonds, contributing to helix-like structures that strengthen the resin. The mechanism by which the BO4- structure terminates radical agents and transforms into carbonaceous material is elucidated through thermodynamic values, revealing the plausible reactions and chemical structure of boron in the resulting material.
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页数:17
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