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Dichroism in Helicoidal Crystals

机译:螺旋晶体中的二色性

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摘要

Accounting for the interactions of light with heterogeneous, anisotropic, absorbing, optically active media is part of the characterization of complex, transparent materials. Stained biological structures in thin tissue sections share many of these features, but systematic optical analyses beyond the employ of the simple petrographic microscopes have not be established. Here, this accounting is made for polycrystalline, spherulitic bundles of twisted D-mannitol lamellae grown from melts containing light-absorbing molecules. It has long been known that a significant percentage of molecular crystals readily grow as helicoidal ribbons with mesoscale pitches, but a general appreciation of the commonality of these non-classical crystal forms has been lost. Helicoidal crystal twisting was typically assayed by analyzing refractivity modulation in the petrographic microscope. However, by growing twisted crystals from melts in the presence of dissolved, light-absorbing molecules, crystal twisting can be assayed by analyzing the dichroism, both linear and circular. The term "helicoidal dichroism" is used here to describe the optical consequences of anisotropic absorbers precessing around radii of twisted crystalline fibrils or lamellae. D-Mannitol twists in two polymorphic forms, α and δ. The two polymorphs, when grown from supercooled melts in the presence of a variety of histochemical stains and textile dyes, are strongly dichroic in linearly polarized white light The bis-azo dye Chicago sky blue is modeled because it is most absorbing when parallel and perpendicular to the radial axes in the respective spherulitic polymorphs. Optical properties were measured using Mueller matrix imaging polarimetry and simulated by taking into account the microstructure of the lamellae. The optical analysis of the dyed, patterned polycrystals clarifies aspects of the mesostructure that can be difficult to extract from bundles of tightly packed fibrils.
机译:解释光与非均质,各向异性,吸收性,光学活性介质的相互作用是复杂透明材料表征的一部分。薄组织切片中染色的生物结构具有许多这些特征,但是尚未建立超出使用简单的岩相显微镜的系统光学分析。在这里,这种计算是针对从含有光吸收分子的熔体中生长的扭曲的D-甘露醇薄片的多晶球状束。早就知道,相当大比例的分子晶体容易以具有中尺度节距的螺旋状带状生长,但是对这些非经典晶体形式的共性失去了普遍的认识。通常通过在岩相显微镜中分析折射率调制来测定螺旋晶体扭曲。但是,通过在溶解的吸光分子存在下从熔体中生长扭曲的晶体,可以通过分析线性和圆形的二色性来分析晶体的扭曲。这里使用术语“螺旋二向色性”来描述围绕扭曲的晶体原纤维或薄片的半径进动的各向异性吸收剂的光学结果。 D-甘露醇以两种多晶型形式扭曲,即α和δ。这两种多晶型物是在存在各​​种组织化学污渍和纺织染料的情况下从过冷的熔体中生长出来的,它们在线性偏振白光下具有强烈的二向色性。双偶氮染料Chicago sky blue被建模是因为它在平行于和垂直于各个球状多晶型物的径向轴。使用Mueller矩阵成像旋光法测量光学性能,并考虑薄片的微观结构进行模拟。对染色的,图案化的多晶进行光学分析,可以清楚地观察介孔结构的各个方面,这些方面可能很难从紧密堆积的原纤维束中提取出来。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2016年第37期|12211-12218|共8页
  • 作者单位

    Department of Chemistry and Molecular Design Institute, New York University, 100 Washington Square East, New York, New York 10003, United States;

    Department of Chemistry and Molecular Design Institute, New York University, 100 Washington Square East, New York, New York 10003, United States;

    Departament de Fisica Aplicada, Institute of Nanoscience and Nanotechnology (IN2UB), Universitat de Barcelona, C/Marti i Franques 1, 08028 Barcelona, Catalonia, Spain;

    Hinds Instruments, 7245 NW Evergreen Parkway, Hillsboro, Oregon 97124, United States;

    Department of Chemistry and Molecular Design Institute, New York University, 100 Washington Square East, New York, New York 10003, United States;

    Department of Chemistry and Molecular Design Institute, New York University, 100 Washington Square East, New York, New York 10003, United States;

    Department of Chemistry and Molecular Design Institute, New York University, 100 Washington Square East, New York, New York 10003, United States,Department of Advanced Science and Engineering (TWIns), Waseda University, 162-0056 Tokyo, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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