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首页> 外文期刊>Advanced Optical Materials >Lanthanide Luminescence to Mimic Molecular Logic and Computing through Physical Inputs
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Lanthanide Luminescence to Mimic Molecular Logic and Computing through Physical Inputs

机译:镧系元素发光以模仿分子逻辑和通过物理输入计算

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摘要

The remarkable advances in molecular logic reported in the last decade demonstrate the potential of luminescent molecules for logical operations, a paradigm-changing concerning silicon-based electronics. Trivalent lanthanide (Ln(3+)) ions, with their characteristic narrow line emissions, long-lived excited states, and photostability under illumination, may improve the state-of-the-art molecular logical devices. Here, the use of monolithic silicon-based structures incorporating Ln(3+)complexes for performing logical functions is reported. Elementary logic gates (AND, INH, and DEMUX), sequential logic (KEYPAD LOCK), and arithmetic operations (HALF ADDER and HALF SUBTRACTOR) exhibiting a switching ratio 60% are demonstrated for the first time using nonwet conditions. Additionally, this is the first report showing sequential logic and arithmetic operations combining molecular Ln(3+)complexes and physical inputs. Contrary to chemical inputs, physical inputs may enable the future concatenation of distinct logical functions and reuse of the logical devices, a clear step forward toward input-output homogeneity that is precluding the integration of nowadays molecular logic devices.
机译:在过去十年中报告的分子逻辑的显着进展证明了逻辑运营的发光分子的潜力,一种关于硅基电子的范式改变。三价镧系元素(LN(3+))离子,其特征窄线排放,长寿激发状态和照明下的光稳定性,可以改善最先进的分子逻辑装置。这里,报道了使用掺入LN(3+)络合物的单片硅基结构用于执行逻辑功能。使用非泳装条件首次对表现出开关比的基本逻辑门(和,inh和Demux),顺序逻辑(键盘锁)和算术运算(半加法器和半音减法器)。此外,这是第一个报告,显示了分子LN(3+)复合物和物理输入的顺序逻辑和算术运算。与化学输入相反,物理输入可以实现未来的独特逻辑功能和逻辑设备的重用串联,朝向输入输出均匀性的清晰步骤,这妨碍了当今分子逻辑器件的集成。

著录项

  • 来源
    《Advanced Optical Materials 》 |2020年第12期| 2000312.1-2000312.10| 共10页
  • 作者单位

    Univ Aveiro Dept Phys CICECO Aveiro Inst Mat Phantom G P-3810193 Aveiro Portugal;

    Univ Aveiro Dept Phys CICECO Aveiro Inst Mat Phantom G P-3810193 Aveiro Portugal;

    Univ Zaragoza Inst Nanociencia Aragon INA Lab Microscopias Avanzadas LMA Edificio I D C Mariano Esquillor S-N Zaragoza 50018 Spain;

    Univ Zaragoza CSIC Dept Fis Mat Condensada Zaragoza 50009 Spain|Univ Zaragoza CSIC Inst Ciencia Mat Aragon Zaragoza 50009 Spain;

    Univ Zaragoza CSIC Dept Fis Mat Condensada Zaragoza 50009 Spain|Univ Zaragoza CSIC Inst Ciencia Mat Aragon Zaragoza 50009 Spain;

    Univ Barcelona Dept Farmacol & Quim Terapeut Avda Joan XXIII S-N Barcelona 08028 Spain|Univ Barcelona Inst Nanociencia & Nanotecnol UB IN2UB Avda Joan XXIII S-N Barcelona 08028 Spain;

    Univ Barcelona Dept Farmacol & Quim Terapeut Avda Joan XXIII S-N Barcelona 08028 Spain|Univ Barcelona Inst Nanociencia & Nanotecnol UB IN2UB Avda Joan XXIII S-N Barcelona 08028 Spain;

    CSIC CNM IMB Inst Microelect Barcelona Campus UAB Barcelona 08193 Spain;

    CSIC CNM IMB Inst Microelect Barcelona Campus UAB Barcelona 08193 Spain;

    Aalto Univ Dept Appl Phys Helsinki 00076 Finland;

    Univ Zaragoza CSIC Dept Fis Mat Condensada Zaragoza 50009 Spain|Univ Zaragoza CSIC Inst Ciencia Mat Aragon Zaragoza 50009 Spain;

    Univ Aveiro Dept Phys CICECO Aveiro Inst Mat Phantom G P-3810193 Aveiro Portugal;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    computing; lanthanide; luminescence; molecular logic; physical input;

    机译:计算;镧系;发光;分子逻辑;物理输入;

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