Ybañez Manolito G, Camacho Drexel H
Chemistry Department, De La Salle University 2401 Taft, Avenue Manila 0922 Philippines
Central Instrumentation Facility, De La Salle University Laguna Campus, LTI Spine Road, Barangays Biñan and Malamig Biñan City Laguna 4024 Philippines.
RSC Adv. 2021 Oct 6;11(52):32873-32883. doi: 10.1039/d1ra02908h. eCollection 2021 Oct 4.
Bacterial cellulose (BC) is a promising material for new technologies, but the range of application is limited due to its hydrophilicity. This work aims to design a hydrophobic material derived from BC, which may find use in a broad range of applications such as packaging, sensing, construction, and electronics. We report that ultrasonic treatment of BC increased the degree of material impregnation into the fiber network that altered the hydrophobic properties of the BC-based composite films. Measurements in XTM revealed that sonication enhanced the porosity of BC films from 5.77% to 22.54%. Materials such as magnesium hydroxide (MH), graphene oxide (GO), and stearic acid (SA) were impregnated into the BC films. FTIR analysis and SEM-EDS confirmed the absorption of these molecules into the BC fibers. The water contact angle (WCA) of BC films impregnated with these functional materials showed a three to four-fold increase in hydrophobicity. The incorporation of 0.3% GO in sonicated BC afforded WCA at 137.20°, which is way better than the commercial water repellant (114.90°). The sonicated BC film afforded better tensile strength and Young's modulus, up to 229.67 MPa and 6.85 GPa, respectively. This work has shown that ultrasonic treatment improved the absorption capability of BC towards hydrophobic functionalization.
细菌纤维素(BC)是一种很有前途的用于新技术的材料,但由于其亲水性,应用范围有限。这项工作旨在设计一种由BC衍生的疏水材料,这种材料可能会在包装、传感、建筑和电子等广泛应用中找到用武之地。我们报告称,对BC进行超声处理提高了材料浸入纤维网络的程度,从而改变了基于BC的复合薄膜的疏水性能。XTM测量结果显示,超声处理使BC薄膜的孔隙率从5.77%提高到了22.54%。氢氧化镁(MH)、氧化石墨烯(GO)和硬脂酸(SA)等材料被浸入到BC薄膜中。傅里叶变换红外光谱(FTIR)分析和扫描电子显微镜-能谱分析(SEM-EDS)证实了这些分子被吸收到BC纤维中。浸渍有这些功能材料的BC薄膜的水接触角(WCA)显示疏水性提高了三到四倍。在超声处理过的BC中加入0.3%的GO,得到的WCA为137.20°,这比商用防水剂(114.90°)要好得多。超声处理过的BC薄膜具有更好的拉伸强度和杨氏模量,分别高达229.67 MPa和6.85 GPa。这项工作表明,超声处理提高了BC对疏水功能化的吸收能力。