Wang Maolin, Xu Zhenkai, Shi Yi, Cai Fang, Qiu Jiaqi, Yang Guang, Hua Zan, Chen Tao
Key Laboratory of Advanced Textile Materials & Manufacturing Technology, Ministry of Education; Eco-Dyeing and Finishing Engineering Research Center, Ministry of Education; National Base for International Science and Technology Cooperation in Textiles and Consumer-Goods Chemistry, Zhejiang Sci-Tech University, Hangzhou 310018, China.
Zhejiang Cady Industry Co., Ltd., Industrial Garden Lianshi Town, Huzhou 313013, China.
J Org Chem. 2021 Jun 18;86(12):8027-8035. doi: 10.1021/acs.joc.1c00410. Epub 2021 Jun 9.
Polymeric nanoreactors in water fabricated by the self-assembly of amphiphilic copolymers have attracted much attention due to their good catalytic performance without using organic solvents. However, the disassembly and instability of relevant nanostructures often compromise their potential applicability. Herein, the preparation of 2,2,6,6-tetramethylpiperidine-1-oxyl (TEMPO)-containing nanoreactors by the self-assembly of amphiphilic bottlebrush copolymers has been demonstrated. First, a macromonomer having a norbornenyl polymerizable group was prepared by RAFT polymerization of hydrophobic and hydrophilic monomers. The macromonomer was further subjected to ring-opening metathesis polymerization to produce an amphiphilic bottlebrush copolymer. Further, TEMPO, as a catalyst, was introduced into the hydrophobic block through the activated ester strategy. Finally, TEMPO-functionalized polymeric nanoreactors were successfully obtained by self-assembly in water. The nanoreactors exhibited excellent catalytic activities in selective oxidation of alcohols in water. More importantly, the reaction kinetics showed that the turnover frequency is greatly increased compared to that of the similar nanoreactor prepared from liner copolymers under the same conditions. The outstanding catalytic activities of the nanoreactors from bottlebrush copolymers could be attributed to the more stable micellar structure using the substrate concentration effect. This work presents a new strategy to fabricate stable nanoreactors, paving the way for highly efficient organic reactions in aqueous solutions.
两亲性共聚物自组装制备的水中聚合物纳米反应器,因其良好的催化性能且无需使用有机溶剂而备受关注。然而,相关纳米结构的拆解和不稳定性常常影响其潜在的适用性。在此,已证明通过两亲性刷状共聚物的自组装制备含2,2,6,6-四甲基哌啶-1-氧基(TEMPO)的纳米反应器。首先,通过疏水和亲水单体的可逆加成-断裂链转移(RAFT)聚合制备具有降冰片烯基可聚合基团的大分子单体。该大分子单体进一步进行开环易位聚合以制备两亲性刷状共聚物。此外,通过活化酯策略将TEMPO作为催化剂引入疏水嵌段。最后,通过在水中自组装成功获得了TEMPO功能化的聚合物纳米反应器。这些纳米反应器在水中醇的选择性氧化中表现出优异的催化活性。更重要的是,反应动力学表明,与在相同条件下由线性共聚物制备的类似纳米反应器相比,周转频率大大提高。刷状共聚物纳米反应器出色的催化活性可归因于利用底物浓度效应形成的更稳定的胶束结构。这项工作提出了一种制备稳定纳米反应器的新策略,为水溶液中的高效有机反应铺平了道路。