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Multistates and Polyamorphism in Phase-Change K_2Sb_8Se_(13)

机译:相变K_2Sb_8Se_(13)中的多态和多态

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摘要

The phase-change (PC) materials in the majority of optical data storage media in use today exhibit a fast, reversible crystal → amorphous phase transition that allows them to be switched between on (1) and off (0) binary states. Solid-state inorganic materials with this property are relatively common, but those exhibiting an amorphous → amorphous transition called polyamorphism are exceptionally rare. K_(2)Sb_(8)Se_(13) (KSS) reported here is the first example of a material that has both amorphous → amorphous polyamorphic transition and amorphous → crystal transition at easily accessible temperatures (227 and 263 °C, respectively). The transitions are associated with the atomic coordinative preferences of the atoms, and all three states of K_(2)Sb_(8)Se_(13) are stable in air at 25 °C and 1 atm. All three states of K_(2)Sb_(8)Se_(13) exhibit distinct optical bandgaps, E _(g) = 1.25, 1.0, and 0.74 eV, for the amorphous-II, amorphous-I, and crystalline versions, respectively. The room-temperature electrical conductivity increases by more than 2 orders of magnitude from amorphous-I to -II and by another 2 orders of magnitude from amorphous-II to the crystalline state. This extraordinary behavior suggests that a new class of materials exist which could provide multistate level systems to enable higher-order computing logic circuits, reconfigurable logic devices, and optical switches.
机译:当今使用的大多数光学数据存储介质中的相变(PC)材料表现出快速的,可逆的晶体→非晶态相变,使它们可以在开(1)和关(0)二进制状态之间切换。具有这种性质的固态无机材料相对较常见,但是表现出无定形→无定形过渡(称为多晶型)的那些极为罕见。此处报道的K_(2)Sb_(8)Se_(13)(KSS)是材料的第一个示例,该材料在易于达到的温度(分别为227和263°C)下具有非晶→非晶多晶过渡和非晶→晶体过渡。跃迁与原子的原子配位偏好相关,并且K_(2)Sb_(8)Se_(13)的所有三个状态在25°C和1 atm的空气中均稳定。 K_(2)Sb_(8)Se_(13)的所有三个状态都表现出不同的光学带隙,对于非晶态II,非晶态I和晶体,E_(g)= 1.25、1.0和0.74 eV。版本。从非晶态I到-II,室温电导率增加超过2个数量级,从非晶态II到结晶态又增加2个数量级。这种非同寻常的行为表明存在一类新型材料,可以提供多状态级系统来启用高阶计算逻辑电路,可重构逻辑器件和光开关。

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  • 来源
    《Journal of the American Chemical Society》 |2018年第29期|9261-9268|共8页
  • 作者单位

    Department of Chemistry, Northwestern University;

    Applied Physics Graduate Program, Northwestern University;

    Applied Physics Graduate Program, Northwestern University;

    Department of Chemistry, Northwestern University;

    Materials Science Division, Argonne National Laboratory, Argonne;

    Department of Material Science and Engineering, Northwestern University;

    Department of Chemistry, Northwestern University;

    Department of Material Science and Engineering, Northwestern University;

    Department of Physics, Aristotle University of Thessaloniki, Thessaloniki, Greece;

    Department of Physics, Missouri University of Science and Technology;

    Department of Physics and Astronomy, Northwestern University;

    Applied Physics Graduate Program, Northwestern University,Department of Electrical Engineering and Computer Science, Northwestern University;

    Department of Chemistry, Northwestern University,Applied Physics Graduate Program, Northwestern University,Department of Material Science and Engineering, Northwestern University;

    Applied Physics Graduate Program, Northwestern University,Department of Material Science and Engineering, Northwestern University,Department of Physics and Astronomy, Northwestern University;

    Department of Material Science and Engineering, Northwestern University;

    Department of Material Science and Engineering, Northwestern University;

    Department of Chemistry, Northwestern University,Materials Science Division, Argonne National Laboratory, Argonne;

  • 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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  • 入库时间 2022-08-18 03:07:23

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