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首页> 外文期刊>Thermochimica Acta: An International Journal Concerned with the Broader Aspects of Thermochemistry and Its Applications to Chemical Problems >Combining TMDSC measurements between chip-calorimeter and molecular simulation to study reversible melting of polymer crystals
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Combining TMDSC measurements between chip-calorimeter and molecular simulation to study reversible melting of polymer crystals

机译:结合芯片量热仪和分子模拟之间的TMDSC测量来研究聚合物晶体的可逆熔融

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摘要

Reversible melting is a phenomenon unique to polymer crystals, which raises an excess reversing heat capacity near their melting points. By means of temperature-modulated differential scanning calorimetry (TMDSC) measurements with an expanded frequency range in chip-calorimeter, we studied reversing heat capacities of alpha- and beta-form crystals of isotactic polypropylene. We attributed their differences at high temperatures and low frequencies to variable chain mobility in these two crystals. We further performed parallel dynamic Monte Carlo simulations of lattice polymers with variable chain mobility in the crystals to confirm this attribution. Our observations provide the first evidence on the role of chain mobility in the microscopic mechanism of reversible melting at the fold-end surfaces of lamellar polymer crystals. (C) 2014 Elsevier B.V. All rights reserved.
机译:可逆熔化是聚合物晶体特有的现象,会在其熔点附近产生过量的反向热容。通过在芯片量热仪中扩展频率范围的温度调制差示扫描量热法(TMDSC)测量,我们研究了全同立构聚丙烯的α型和β型晶体的可逆热容。我们将它们在高温和低频下的差异归因于这两种晶体的可变链迁移率。我们进一步对晶体中具有可变链迁移率的晶格聚合物进行了平行动态蒙特卡罗模拟,以确认该属性。我们的观察结果为链迁移率在层状聚合物晶体折叠端表面可逆熔融的微观机制中的作用提供了第一个证据。 (C)2014 Elsevier B.V.保留所有权利。

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