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Computation-guided design of high-performance flexible thermoelectric modules for sunlight-to-electricity conversion

机译:用于阳光电压转换的高性能柔性热电模块的计算导向设计

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摘要

Due to the outstanding mechanical endurance and easy scale-up fabrication, printed poly(3,4-ethylenedioxithiophene):poly(styrenesulfonate) (PEDOT:PSS) films are a promising thermoelectric material. However, their low thermoelectric performance, unreasonable device design and insufficient temperature gradient have significantly hindered the development of flexible PEDOT:PSS-based thermoelectric devices for their practical applications. To overcome these challenges, here we propose a novel method combining ethylene glycol pre-treatment and H(2)SO(4)post-treatment plus tetrakis(dimethylamino)ethylene post-treatment in sequence to engineer printed flexible PEDOT:PSS films. The ethylene glycol pre-treatment strengthens the selective removal of excess non-ionized PSS to create a clear path for the further H(2)SO(4)post-treatment, and in turn induces a structural conformation transition of the conjugated carbon chains in PEDOT:PSS films. The final tetrakis(dimethylamino)ethylene post-treatment induces a high power factor of 224 mu W m(-1)K(-2)at room temperature by tuning the oxidation level of the fabricated PEDOT:PSS films. More importantly, we employ thermodynamic numerical analysis to computationally design and assemble a flexible module using the optimized PEDOT:PSS films. Such a module yields a record-high power output density of 3 mu W cm(-2)at a temperature gradient of 44.5 K induced by harvesting sunlight, and has no notable performance change after mechanical (1000 bending cycles), air stability (30-day air exposure) and thermal stability (20 heating and cooling cycles) tests. This study indicates that our computation-guided module can be widely applied to supply power for micro-watt electronics by virtue of the high-efficiency sunlight-to-electricity conversion.
机译:由于出色的机械耐久性和易扩散制造,印刷聚(3,4-亚乙二醇):聚(苯乙烯磺酸盐)(PEDOT:PSS)薄膜是有希望的热电材料。然而,它们的低热电性能,不合理的器件设计和温度不足的温度梯度显着阻碍了柔性PEDOT的开发:基于PSS的热电装置的实际应用。为了克服这些挑战,在这里,我们提出了一种新的方法,将乙二醇预处理和H(2)所以(4)后处理加上四(二甲基氨基)乙烯的序列后处理,以工程师印刷的柔性PEDOT:PSS薄膜。乙二醇预处理加强了过量的非电离PSS的选择性除去,以产生透明的路径,用于另外的H(2)所以(4)后处理,又引起共轭碳链的结构构象转变PEDOT:PSS薄膜。最终四甲基(二甲基氨基)乙烯后处理通过调节制造的PEDOT的氧化水平,在室温下在室温下诱导高功率因子为224μm(-2):PSS膜。更重要的是,我们使用热力学数值分析来计算使用优化的PEDOT:PSS薄膜来计算和组装灵活模块。这种模块在通过收获阳光突出的44.5k的温度梯度下产生3μWcm(-2)的记录高功率输出密度,并且在机械(1000个弯曲循环),空气稳定性(30时,没有显着的性能变化 - 天空暴露)和热稳定性(20加热和冷却循环)测试。本研究表明,通过高效的阳光转换,我们的计算引导模块可广泛应用于微型瓦特电子设备供电。

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  • 来源
    《Energy & environmental science》 |2020年第10期|3480-3488|共9页
  • 作者单位

    Univ Queensland Mat Engn Brisbane Qld 4072 Australia;

    Univ Southern Queensland Ctr Future Mat Springfield Cent Qld 4300 Australia;

    Univ Southern Queensland Ctr Future Mat Springfield Cent Qld 4300 Australia;

    Univ Queensland Mat Engn Brisbane Qld 4072 Australia;

    Univ Queensland Mat Engn Brisbane Qld 4072 Australia;

    Harbin Inst Technol Sch Energy Sci & Engn 92 West Dazhi St Harbin 15001 Peoples R China;

    Univ Queensland Mat Engn Brisbane Qld 4072 Australia;

    Univ Queensland Mat Engn Brisbane Qld 4072 Australia|Univ Queensland Ctr Microscopy & Microanal Brisbane Qld 4072 Australia;

    Univ Queensland Mat Engn Brisbane Qld 4072 Australia|Univ Southern Queensland Ctr Future Mat Springfield Cent Qld 4300 Australia;

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