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首页> 外文期刊>ACS applied materials & interfaces >Extended Nitric Oxide-Releasing Polyurethanes via S-Nitrosothiol-Modified Mesoporous Silica Nanoparticles
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Extended Nitric Oxide-Releasing Polyurethanes via S-Nitrosothiol-Modified Mesoporous Silica Nanoparticles

机译:通过S-亚硝基硫醇改性的中孔二氧化硅纳米颗粒延长一氧化物释放聚氨酯

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摘要

S-Nitrosothiol (RSNO)-modified mesoporous silica nanoparticles (MSNs) were doped into polyurethane (PU) to achieve extended NO-releasing coatings. Parameters influencing the synthesis of RSNO-functionalized nitric oxide (NO)-releasing MSNs were evaluated to elucidate the impact of pore structure on NO release characteristics. The porous particles were characterized as having larger NO payloads and longer NO release durations than those of nonporous particles, a feature attributed to the recombination of the NO radical in confined intraporous microenvironments. NO release kinetics, particle leaching, and thermal stability of the RSNO-modified MSNs dispersed in PU were evaluated as a function of PU structure to determine the feasibility of preparing a range of NO -releasing polymers for biomedical device coating applications. The NO release kinetics from the PUs proved to be highly extended (>30 d) and consistent over a range of PU properties. Furthermore, RSNO-modified MSN leaching was not observed from the PUs. The NO release payloads were also maintained for 4 days for polymers stored at 0 degrees C.
机译:将S-亚硝基硫醇(RSNO)制剂 - 制剂中孔二氧化硅纳米颗粒(MSNS)掺杂到聚氨酯(PU)中以实现延长的无释放涂层。评估影响RSNO-官能化的一氧化氮(NO)的合成的参数 - 被评估致释放孔结构在无释放特征上的影响。将多孔颗粒表征成具有较大的有效载荷并且没有比无孔颗粒的有效载荷更长的释放持续时间,该特征归因于狭窄的内含内微环境中NO基团的重组。没有释放动力学,颗粒浸出和分散在PU中的RSNO改性MSN的热稳定性被评估为PU结构的函数,以确定制备用于生物医学装置涂料应用的一系列无-30的可行性。从脓液中没有释放动力学被证明是高度延长(> 30d),并在一系列PU属性方面一致。此外,没有从脓液中观察到RSNO改性的MSN浸出。在0摄氏度下储存的聚合物,也没有保持释放有效载荷4天。

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