Sachini Narmada Dissanayake, Kanishka De Silva, S. Egodage, Frank Dennis Blum, Madhubhashini Maddumaarachchi
{"title":"Enhancement of hydrophobicity in natural rubber vulcanizates using diatomaceous earth","authors":"Sachini Narmada Dissanayake, Kanishka De Silva, S. Egodage, Frank Dennis Blum, Madhubhashini Maddumaarachchi","doi":"10.1177/14777606231224129","DOIUrl":null,"url":null,"abstract":"This study discusses an approach that gives the Natural Rubber (NR) vulcanizates an elevated hydrophobic character. The method used a chemically treated filler called diatomaceous earth (DE) to deliver the hydrophobic characteristics to NR. DE has a nanoscale roughness. It was chemically treated with hexadecyltrimethoxy silane to obtain low surface energy. The combination of nanoscale roughness and low surface energy gave superhydrophobic properties to DE. A series of treated-DE was made with varying silane percentages to find an optimum silane to DE ratio to get the maximum possible hydrophobicity. The optimum ratio was recorded as 38% w/w, and the treated DE displayed a superhydrophobic water contact angle (WCA) of 152°. The treated-DE was added to the rubber as a filler during the compounding process. The filler was added in varying amounts of 5 phr, 10 phr, 15 phr, and 20 phr to observe the changes in the hydrophobic property. The wettability and morphology of developed vulcanizates were measured using WCA measurements and scanning electron microscope (SEM) analysis, respectively. NR compounded with 20 phr filler exhibited an enhanced WCA of 136°, compared to the WCA of 92° of the NR vulcanizate with no treated-DE, and displayed improved tensile, and tear properties.","PeriodicalId":508656,"journal":{"name":"Progress in Rubber, Plastics and Recycling Technology","volume":"6 3","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2023-12-21","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Progress in Rubber, Plastics and Recycling Technology","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1177/14777606231224129","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
This study discusses an approach that gives the Natural Rubber (NR) vulcanizates an elevated hydrophobic character. The method used a chemically treated filler called diatomaceous earth (DE) to deliver the hydrophobic characteristics to NR. DE has a nanoscale roughness. It was chemically treated with hexadecyltrimethoxy silane to obtain low surface energy. The combination of nanoscale roughness and low surface energy gave superhydrophobic properties to DE. A series of treated-DE was made with varying silane percentages to find an optimum silane to DE ratio to get the maximum possible hydrophobicity. The optimum ratio was recorded as 38% w/w, and the treated DE displayed a superhydrophobic water contact angle (WCA) of 152°. The treated-DE was added to the rubber as a filler during the compounding process. The filler was added in varying amounts of 5 phr, 10 phr, 15 phr, and 20 phr to observe the changes in the hydrophobic property. The wettability and morphology of developed vulcanizates were measured using WCA measurements and scanning electron microscope (SEM) analysis, respectively. NR compounded with 20 phr filler exhibited an enhanced WCA of 136°, compared to the WCA of 92° of the NR vulcanizate with no treated-DE, and displayed improved tensile, and tear properties.
本研究讨论了一种使天然橡胶(NR)硫化胶具有较高疏水特性的方法。该方法使用一种名为硅藻土(DE)的化学处理填料来为 NR 提供疏水特性。硅藻土具有纳米级的粗糙度。用十六烷基三甲氧基硅烷对其进行化学处理,以获得低表面能。纳米级粗糙度和低表面能的结合赋予了 DE 超疏水特性。我们用不同比例的硅烷制造了一系列经过处理的 DE,以找到硅烷与 DE 的最佳比例,从而获得最大可能的疏水性。最佳比例为 38% w/w,处理后的 DE 显示出 152° 的超疏水接触角(WCA)。在混炼过程中,将处理过的 DE 作为填料添加到橡胶中。填料的添加量分别为 5 phr、10 phr、15 phr 和 20 phr,以观察疏水性的变化。使用 WCA 测量和扫描电子显微镜(SEM)分析分别测量了已开发硫化胶的润湿性和形态。与未处理-DE 的 NR 硫化物的 WCA(92°)相比,添加 20 phr 填料的 NR 硫化物的 WCA(136°)有所提高,拉伸和撕裂性能也有所改善。