Sammon Matthew S, Biewend Michel, Michael Philipp, Schirra Simone, Ončák Milan, Binder Wolfgang H, Beyer Martin K
Institut für Ionenphysik und Angewandte Physik, Universität Innsbruck, Technikerstraße 25, 6020, Innsbruck, Austria.
Department of Macromolecular Chemistry, Martin-Luther-Universität Halle-Wittenberg, von-Danckelmann-Platz 4, 06120, Halle (Saale), Germany.
Chemistry. 2021 Jun 16;27(34):8723-8729. doi: 10.1002/chem.202100555. Epub 2021 May 11.
Single-molecule force spectroscopy allows investigation of the effect of mechanical force on individual bonds. By determining the forces necessary to sufficiently activate bonds to trigger dissociation, it is possible to predict the behavior of mechanophores. The force necessary to activate a copper biscarbene mechano-catalyst intended for self-healing materials was measured. By using a safety line bypassing the mechanophore, it was possible to pinpoint the dissociation of the investigated bond and determine rupture forces to range from 1.6 to 2.6 nN at room temperature in dimethyl sulfoxide. The average length-increase upon rupture of the Cu-C bond, due to the stretching of the safety line, agrees with quantum chemical calculations, but the values exhibit an unusual scattering. This scattering was assigned to the conformational flexibility of the mechanophore, which includes formation of a threaded structure and recoiling of the safety line.
单分子力谱能够研究机械力对单个化学键的影响。通过确定充分激活化学键以引发解离所需的力,就有可能预测机械响应分子的行为。测量了用于自愈材料的铜双卡宾机械催化剂激活所需的力。通过使用绕过机械响应分子的安全线,可以精确确定所研究化学键的解离,并在室温下于二甲基亚砜中测定断裂力范围为1.6至2.6 nN。由于安全线的拉伸,Cu-C键断裂时的平均长度增加与量子化学计算结果相符,但这些值呈现出异常的离散性。这种离散性归因于机械响应分子的构象灵活性,其中包括形成螺纹结构和安全线的回卷。