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A room-temperature moisture-stabilized metal-free energetic ferroelectric material for piezoelectric generation

机译:一种用于压电发电的室温防潮无金属含能铁电材料

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摘要

Metal-free molecule-based ferroelectrics that are degradable and exhibit tunable structures, low production costs, and ‘‘soft’’ textures have prospects for sensing and piezoelectric generation applications, but the instances integrating multiple functionalities are very rare. Herein, we proved that an energetic material based on ternary perchlorate salt, (1-methyl-1,4-diazabicyclo-[2.2.2]octane-1,4- diium)(NH4)(ClO4)3 (DAP-M4), is simultaneously a rare room-temperature ferroelectric crystal with a low hygroscopicity (a weight increase of less than 0.02% under 100% relative humility), an ultrawide band gap of 5.4 eV, ‘‘soft’’ mechanical properties (Young’s modulus less than 23.68 GPa), and an exploitable piezoelectricity (d34 = 5.24 pC N1). Moreover, its potential piezoelectric generation application was demonstrated by an easily fabricated DAP-M4/TPU (thermoplastic polyurethane) composite film with an open-circuit voltage of 3.5 V and a short-circuit current of 0.5 mA. Being a novel energetic ferroelectric material with simultaneously excellent energetic and optical-electrical properties, DAP-M4 provides an attractive possibility for assembling highly integrated functional and self-destructive devices, and inspires the design of next-generation multi-functional materials based on diverse molecular components.
机译:基于不含金属的分子的铁电体可降解和展览可调结构,低生产成本,“软”纹理传感和压电的前景生成的应用程序,但实例集成多种功能非常罕见的。基于三元材料高氯酸盐,(1-methyl-1 4-diazabicyclo - (2.2.2) octane-1, 4 -diium) (NH4) (ClO4) 3 (DAP-M4),同时是一个罕见的室温铁电晶体低吸湿性(体重增加更少0.02%以上100%以下相对谦逊)ultrawide带隙5.4 eV,“软”机械属性(杨氏模量小于23.68的绩点),和一个利用压电(d34 = 5.24pC N1)。生成应用程序演示了一个很容易伪造DAP-M4 / TPU(热塑性聚氨酯)复合膜开路电压3.5 V和短路电流0.5 mA。材料,同时优秀的精力充沛和光电性质,DAP-M4提供一个有吸引力的可能性进行组装高度集成的功能和自我毁灭设备和激励的设计基于新一代多功能材料在不同分子组件。

著录项

  • 来源
    《Materials Chemistry Frontiers》 |2023年第11期|2251-2259|共9页
  • 作者

    Jun Wang; Xiao-Xian Chen; Le Ye;

  • 作者单位

    MOE Key Laboratory of Bioinorganic and Synthetic Chemistry, School of Chemistry, Sun Yat-Sen University, Guangzhou 510275, China.;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 英语
  • 中图分类 化学;
  • 关键词

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