State Key Laboratory of Multiphase Flow in Power Engineering, Department of Environmental Science and Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
Xi'an Key Laboratory of Sustainable Energy Materials Chemistry, Department of Applied Chemistry, Xi'an Jiaotong University, Xi'an 710049, China.
Langmuir. 2022 Jul 5;38(26):7965-7975. doi: 10.1021/acs.langmuir.2c00677. Epub 2022 Jun 22.
Gels prepared with the solvent-triggering method are attractive for their easy and fast preparation; however, the role of solvents in this process remains unclear, which hinders the efficient and accurate control of desired gel properties. In this study, the role of solvents in the solvent-triggering gelation process is studied using 9-fluorenylmethoxycarbonyl (Fmoc)-protected diphenylalanine (Fmoc-FF) as the gelator. Density functional theory (DFT)-based calculations and corresponding wavefunction analyses are conducted to identify the H-bonding interaction sites between the molecules. The calculation results clearly annotate the activating role of DMF and the triggering role of HO in the gelation process. The solvation of Fmoc-FF by DMF can activate the H-bonding sites on the peptide chain, showing a conformation reversal and higher electrostatic potentials. Then, the H-bonding between Fmoc-FF and HO is facilitated to trigger gelation. The physical Fmoc-FF/DMF/HO gels show easily tuned mechanical strengths ( of 10-10 Pa), injectable potentials (general yield strain < 100%), and stable recoverability (80-98% within 100 s). The regulation of these properties depends on not only the gelator concentration but also the H-bonding interactions with solvent molecules, which have seldom been studied in detail before. By understanding the effect of solvents, low-molecular-weight gelator-based gels can be designed, prepared, and tuned efficiently for potential applications.
使用 9-芴甲氧羰基(Fmoc)保护的二苯丙氨酸(Fmoc-FF)作为凝胶剂,研究了溶剂触发凝胶化过程中溶剂的作用。通过基于密度泛函理论(DFT)的计算和相应的波函数分析,确定了分子间氢键相互作用的位置。计算结果清楚地说明了 DMF 的激活作用和 HO 的触发作用在凝胶化过程中的作用。Fmoc-FF 被 DMF 溶剂化可以激活肽链上的氢键结合部位,表现出构象反转和更高的静电势。然后,促进 Fmoc-FF 和 HO 之间的氢键形成,触发凝胶化。物理 Fmoc-FF/DMF/HO 凝胶具有可调节的机械强度(10-10 Pa)、可注射性(一般产率应变<100%)和稳定的可恢复性(100 s 内恢复 80-98%)。这些性质的调节不仅取决于凝胶剂浓度,还取决于与溶剂分子的氢键相互作用,而这些作用在以前的研究中很少被详细研究。通过了解溶剂的影响,可以有效地设计、制备和调节基于低分子量凝胶剂的凝胶,以满足潜在的应用需求。