Fochi F, Jacopozzi P, Wegelius E, Rissanen K, Cozzini P, Marastoni E, Fisicaro E, Manini P, Fokkens R, Dalcanale E
Dipartimento di Chimica Organica e Industriale, Università di Parma, Parco Area delle Scienze 17/A, I-43100 Parma, Italy.
J Am Chem Soc. 2001 Aug 8;123(31):7539-52. doi: 10.1021/ja0103492.
Two novel classes of cavitand-based coordination cages 7a--j and 8a--d have been synthesized via self-assembly procedures. The main factors controlling cage self-assembly (CSA) have been identified in (i) a P--M--P angle close to 90 degrees between the chelating ligand and the metal precursor, (ii) Pd and Pt as metal centers, (iii) a weakly coordinated counterion, and (iv) preorganization of the tetradentate cavitand ligand. Calorimetric measurements and dynamic (1)H and (19)F NMR experiments indicated that CSA is entropy driven. The temperature range of the equilibrium cage-oligomers is determined by the level of preorganization of the cavitand component. The crystal structure of cage 7d revealed the presence of a single triflate anion encapsulated. Guest competition experiments revealed that the encapsulation preference of cages 7b,d follows the order BF(4)(-) > CF(3)SO(3)(-) >> PF(6)(-) at 300 K. ES-MS experiments coupled to molecular modeling provided a rationale for the observed encapsulation selectivities. The basic selectivity pattern, which follows the solvation enthalpy of the guests, is altered by size and shape of the cavity, allowing the entrance of an ancillary solvent molecule only in the case of BF(4)(-).
通过自组装程序合成了两类新型的基于空穴配体的配位笼7a - j和8a - d。已确定控制笼自组装(CSA)的主要因素为:(i)螯合配体与金属前体之间接近90度的P - M - P角;(ii)作为金属中心的钯和铂;(iii)弱配位抗衡离子;(iv)四齿空穴配体的预组织。量热测量以及动态(1)H和(19)F NMR实验表明CSA是由熵驱动的。平衡笼 - 低聚物的温度范围由空穴配体组分的预组织水平决定。笼7d的晶体结构显示存在单个被封装的三氟甲磺酸根阴离子。客体竞争实验表明,在300 K时,笼7b、d的封装偏好顺序为BF(4)(-) > CF(3)SO(3)(-) >> PF(6)(-)。结合分子模拟的电喷雾质谱(ES - MS)实验为观察到的封装选择性提供了理论依据。遵循客体溶剂化焓的基本选择性模式会因空腔的大小和形状而改变,仅在BF(4)(-)的情况下允许辅助溶剂分子进入。