Kholkin Andrei, Alikin Denis, Shur Vladimir, Dishon Shiri, Ehre David, Lubomirsky Igor
School of Natural Sciences and Mathematics, Ural Federal University, 620000 Ekaterinburg, Russia.
Department of Physics & CICECO-Aveiro Institute of Materials, University of Aveiro, 3810-193 Aveiro, Portugal.
Materials (Basel). 2021 Aug 30;14(17):4922. doi: 10.3390/ma14174922.
Piezoelectricity is the ability of certain crystals to generate mechanical strain proportional to an external electric field. Though many biomolecular crystals contain polar molecules, they are frequently centrosymmetric, signifying that the dipole moments of constituent molecules cancel each other. However, piezoelectricity can be induced by stereospecific doping leading to symmetry reduction. Here, we applied piezoresponse force microscopy (PFM), highly sensitive to local piezoelectricity, to characterize (01¯0) faces of a popular biomolecular material, α-glycine, doped with other amino acids such as L-alanine and L-threonine as well as co-doped with both. We show that, while apparent vertical piezoresponse is prone to parasitic electrostatic effects, shear piezoelectric activity is strongly affected by doping. Undoped α-glycine shows no shear piezoelectric response at all. The shear response of the L-alanine doped crystals is much larger than those of the L-threonine doped crystals and co-doped crystals. These observations are rationalized in terms of host-guest molecule interactions.
压电性是某些晶体产生与外部电场成比例的机械应变的能力。尽管许多生物分子晶体含有极性分子,但它们常常是中心对称的,这意味着组成分子的偶极矩相互抵消。然而,通过立体特异性掺杂导致对称性降低可诱导出压电性。在此,我们应用对局部压电性高度敏感的压电响应力显微镜(PFM)来表征一种常见生物分子材料α-甘氨酸的(01¯0)面,该材料掺杂了其他氨基酸,如L-丙氨酸和L-苏氨酸,以及同时掺杂了这两种氨基酸。我们表明,虽然表观垂直压电响应容易受到寄生静电效应的影响,但剪切压电活性受掺杂的强烈影响。未掺杂的α-甘氨酸根本没有剪切压电响应。L-丙氨酸掺杂晶体的剪切响应比L-苏氨酸掺杂晶体和共掺杂晶体的剪切响应大得多。这些观察结果通过主客体分子相互作用得到了合理的解释。