Mahmud Eashika, Islam Muhammad Rakibul
Department of Physics, Bangladesh University of Engineering and Technology (BUET), Dhaka, Bangladesh.
Sci Rep. 2023 Nov 28;13(1):20967. doi: 10.1038/s41598-023-48326-8.
A ternary nanocomposite of plasticized starch (PS), reduced graphene oxide (rGO), and molybdenum disulfide (MoS) was prepared via a solution casting process, with MoS concentrations ranging from 0.25 to 1.00 wt%. The structural, surface morphological, optical, and electrochemical properties of the nanocomposites were studied. FTIR analysis reveals the formation of new chemical bonds between PS, rGO, and MoS, indicating strong interactions among them. The XRD analysis showed a reduction in the crystallinity of the nanocomposite from 40 to 21% due to the incorporation of nanofiller. FESEM micrograph showed an increment of the surface roughness due to the incorporation of rGO-MoS layers. UV-vis spectroscopy demonstrated a reduction of optical bandgap from 4.71 to 2.90 eV, resulting from enhanced charge transfer between the layers and defect states due to the addition of nanofillers. The incorporation of MoS increase the specific capacitance of the PS from 2.78 to 124.98 F g at a current density of 0.10 mA g. The EIS analysis revealed that the nanofiller significantly reduces the charge transfer resistance from 4574 to 0 Ω, facilitating the ion transportation between the layers. The PS/rGO/MoS nanocomposite also exhibited excellent stability, retaining about 85% of its capacitance up to 10,000 charging-discharging cycles. These biocompatible polymer-based nanocomposites with improved electrochemical performance synthesized from an easy and economical route may offer a promising direction to fabricate a nature-friendly electrode material for energy storage applications.
通过溶液浇铸法制备了增塑淀粉(PS)、还原氧化石墨烯(rGO)和二硫化钼(MoS)的三元纳米复合材料,其中MoS的浓度范围为0.25至1.00 wt%。研究了纳米复合材料的结构、表面形态、光学和电化学性能。FTIR分析揭示了PS、rGO和MoS之间形成了新的化学键,表明它们之间存在强相互作用。XRD分析表明,由于纳米填料的加入,纳米复合材料的结晶度从40%降至21%。FESEM显微照片显示,由于rGO-MoS层的加入,表面粗糙度增加。紫外可见光谱表明,由于层间电荷转移增强以及纳米填料的加入导致缺陷态增加,光学带隙从4.71 eV降至2.90 eV。在电流密度为0.10 mA g时,MoS的加入使PS的比电容从2.78 F g增加到124.98 F g。EIS分析表明,纳米填料显著降低了电荷转移电阻,从4574 Ω降至0 Ω,促进了层间离子传输。PS/rGO/MoS纳米复合材料还表现出优异的稳定性,在高达10000次充放电循环中保持约85%的电容。这些通过简单且经济的路线合成的具有改善电化学性能的生物相容性聚合物基纳米复合材料,可能为制造用于储能应用的环保电极材料提供一个有前景的方向。