کد مقاله کد نشریه سال انتشار مقاله انگلیسی نسخه تمام متن
1557341 1513747 2016 10 صفحه PDF دانلود رایگان
عنوان انگلیسی مقاله ISI
Surface functionalization engineering driven crystallization behavior of polyethylene glycol confined in mesoporous silica for shape-stabilized phase change materials
ترجمه فارسی عنوان
رفتار کریستالیزاسیون پلی اتیلن گلیکول محور در سیلیکات مزوپوروس برای تغییر شکل فاز ثابت شده
موضوعات مرتبط
مهندسی و علوم پایه مهندسی انرژی انرژی (عمومی)
چکیده انگلیسی


• The surface functionalization engineering of SBA-15 was developed.
• The internal amino groups changed the adsorption conformation of PEG chains.
• The external methyl groups restrained the spillover of PEG molecules.
• The fusion enthalpy of PEG/SBA-15 composite was adjusted from 0 J/g to 88.2 J/g.

Crystallization behaviors of organic phase change materials (PCMs) confined in porous supports, which are determined by the interactions between PCM molecules and channel surface of the supports, are a prerequisite for the storage and release of latent heat in PCMs. In this work, surface functionalization was engineered to regulate the interactions between a PCM of polyethylene glycol (PEG) and internal/external surfaces of a support of SBA-15 and the crystallization/stabilization behavior of PEG, and yield desirable thermal properties of the PEG confined in SBA-15 channels. To investigate the effect of the internal/external surfaces of SBA-15 on the crystallization/stabilization behavior of PEG, SBA-15 supports were modified with various functional terminals, such as NH2-SBA-15-NH2 and NH2-SBA-15-CH3. The fusion enthalpy was increased from 0 J/g of PEG/HO-SBA-15-OH composite to 88.2 J/g of PEG/NH2-SBA-15-CH3 composite. The amino groups modified on the internal surface of SBA-15 reduced the hydrogen bond interactions between PCM molecules and the channel surface of the supports, and also altered the adsorption conformation of the PEG chains from train structure to loop structure, which is conducive to the stretching and crystallization of the PEG chains. Further, the methyl groups grafted on the external surface of SBA-15 restrained the spillover of PEG molecules from the channels due to the opposite polarities of PEG molecules and methyl groups. Crystallization behavior of the PEG molecules in channels of SBA-15 driven by surface functionalization engineering yields a controllable phase change enthalpy of PEG/SBA-15 composite and provides a general approach for the controlling of the thermal properties of PCMs.

The amino functionalization engineering on the internal surface of SBA-15 decreased the amount of adsorption sites of PEG chains, as well as changing the adsorption conformation of PEG chains from the train structure to the loop structure. The methyl functionalization engineering on the external surface of SBA-15 restrained the spillover of PEG molecules from the channels. Under driven crystallization behavior of polyethylene glycol by surface functionalization engineering, the fusion enthalpy was increased from 0 J/g of PEG/HO-SBA-15-OH composite to 88.2 J/g of PEG/NH2-SBA-15-CH3 composite.Figure optionsDownload as PowerPoint slide

ناشر
Database: Elsevier - ScienceDirect (ساینس دایرکت)
Journal: Nano Energy - Volume 19, January 2016, Pages 78–87
نویسندگان
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