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化學(xué)鍵“抓緊”:半赫斯勒熱電材料延展

半赫斯勒材料同時(shí)具有優(yōu)異的熱電性能和力學(xué)性能,是一種良好的能源轉(zhuǎn)化材料,有潛力開發(fā)先進(jìn)的熱電器件,目前制約其發(fā)展的主要阻礙是其固有的脆性以及有限的延展性。

化學(xué)鍵“抓緊”:半赫斯勒熱電材料延展
Fig. 1 | Shear stress-strain response of XFeSb (X = Nb, Ta) and SnNiY (Y = Ti, Zr,?Hf) along the (111)/<–1-12> slip system.

而在面心立方結(jié)構(gòu)中存在的剪切誘導(dǎo)“抓緊鍵”現(xiàn)象,能夠使材料表現(xiàn)出良好的延展性,而半赫斯勒材料的晶體結(jié)構(gòu)是三層嵌套的面心立方結(jié)構(gòu),其晶體結(jié)構(gòu)中可能同樣存在剪切誘導(dǎo)“抓緊鍵”現(xiàn)象,使其具有潛在優(yōu)異的延展性。

化學(xué)鍵“抓緊”:半赫斯勒熱電材料延展

Fig. 2 | The atomic configurations and dynamic?chemical bonds length of TaFeSb before first stress?releasing process during the (111)/<–1-12> shear.

來(lái)自武漢理工大學(xué)理學(xué)院的李國(guó)棟教授團(tuán)隊(duì),使用第一性原理方法研究了TaFeSb半赫斯勒熱電材料的剪切響應(yīng),發(fā)現(xiàn)了剪切誘導(dǎo)“抓緊鍵”現(xiàn)象,該“抓緊鍵”現(xiàn)象被認(rèn)為是不全位錯(cuò)導(dǎo)致的連續(xù)滑移,使材料具有良好的延展性。

化學(xué)鍵“抓緊”:半赫斯勒熱電材料延展

Fig. 3 | the atomic configurations and dynamic?chemical bonds length of TaFeSb after each stress?releasing process during the (111)/<–1-12> shear.

該團(tuán)隊(duì)除研究了TaFeSb的剪切響應(yīng)外,還在具有相同結(jié)構(gòu)特征的NbFeSb中同樣發(fā)現(xiàn)了剪切誘導(dǎo)“抓緊鍵”現(xiàn)象,而在SnNiY (Y = Ti, Zr, Hf)的剪切響應(yīng)中,晶體結(jié)構(gòu)逐漸軟化來(lái)釋放應(yīng)力,兩者的差異來(lái)源于是否發(fā)生晶面解離。

化學(xué)鍵“抓緊”:半赫斯勒熱電材料延展

Fig. 4 | The generalized stacking fault energy calculations?model and generalized stacking fault?energy results of TaFeSb.

最終,剪切誘導(dǎo)“抓緊鍵”現(xiàn)象被認(rèn)為是晶體結(jié)構(gòu)沿特定滑移面發(fā)生化學(xué)鍵斷裂后出現(xiàn)的連續(xù)滑移。作者的此項(xiàng)工作揭示了半赫斯勒熱電材料潛在的延展性及其本質(zhì)。相關(guān)論文近期發(fā)表于npj Computational Materials 10:?61 (2024)

化學(xué)鍵“抓緊”:半赫斯勒熱電材料延展

Fig. 5 | The atomic configurations and dynamic?chemical bonds length of SnNiTi before first stress?releasing process during the (111)/<–1-12> shear.

Editorial Summary

Excellent ductility on half-Heusler thermoelectric materials:?The “catching bonds”?

Half-Heusler materials, with excellent thermoelectric and mechanical properties, are one kinds of excellent energy conversion materials, which is potential on developing advanced thermoelectric devices. At present, the main obstacle to their development is their inherent brittleness and limited ductility. Shear induced “catching bonds” phenomenon has been discovered in face-centered cubic structure, resulting in the excellent ductility. Half-Heusler materials with face-centered cubic sub-lattices may possess shear induced “catching bonds” phenomenon, resulting in the potential excellent ductility.

化學(xué)鍵“抓緊”:半赫斯勒熱電材料延展

Fig. 6 | Shear strain dependent relative systematic?energy of XFeSb (X = Nb, Ta) and SnNiY (Y = Ti,?Zr, Hf) during the (111)/<–1-12> shear.

A research group led by Professor Guodong Li, from the School of Science at Wuhan University of Technology, used the first-principles calculations investigating the shear response of TaFeSb half-Heusler thermoelectric materials and found the shear induced “catching bonds” phenomenon during the shear process, resulting in the excellent ductility. Such shear induced “catching bonds” phenomenon can be considered as the continuous slips caused by partial dislocations. In addition to the investigations on the shear response of TaFeSb, shear-induced “catching bonds” phenomenon have also been found in NbFeSb with the same structural characteristics, while in the shear response of SnNiY (Y = Ti, Zr, Hf), the crystal structures gradually soften to release the stress, whose difference comes from whether the crystal plane cleavage occurs. Finally, the shear-induced “catching bonds” phenomenon can be considered as the continuous slips that occur after the chemical bond breakage along the specific crystal plane.

The research group revealed the potential ductility of the halfi-Heusler thermoelectric material combined with its essence and origin . The relevant work was recently published in npj Computational Materials 10: 61 (2024).

原文Abstract及其翻譯

Origin of shear induced ‘catching bonds’ on half Heusler thermoelectric compounds XFeSb (X?=?Nb, Ta) and SnNiY (Y?=?Ti, Zr, Hf)

Haoqin Ma, Xiege Huang, Zhongtao Lu, Xiaobin Feng, Bo Duan,?Wenjuan Li, Yinhan Liu, Pengcheng Zhai, Guodong Li, Qingjie Zhang

Abstract?Half Heusler materials exhibit excellent thermoelectric and mechanical properties, rendering them potential candidates for advanced thermoelectric devices. Currently, the developments on interrelated devices are impeded by their inherent brittleness and limited ductility. Nevertheless, it exists the potential ductility on half Heusler materials with face-centered cubic sub-lattices through the expectation on the occurrence of shear induced ‘catching bonds’ which can result in excellent ductility on other face centered cubic materials. In this work, focus on half Heusler thermoelectric materials XFeSb (X = Nb, Ta) and SnNiY (Y = Ti, Zr, Hf), the shear deformation failure processes are deeply investigated through the first principle calculations. Shear induced ‘catching bonds’ are found on XFeSb (X = Nb, Ta) along the (111)/<-1-12> slip system, which releasing the internal stress and exactly resulting in the potential ductility. According to the thermodynamic criterion based on generalized stacking fault energy, the essence of shear induced ‘catching bonds’ are interpreted as the (111)/<-110> slips formed by several 1/3(111)/<-1-12> partial dislocations motions. During the (111)/<-1-12> shear on SnNiY (Y = Ti, Zr, Hf), the structural integrity is maintained without inducing ‘catching bonds’. Different deformation processes occurred in the identical crystal structure are elucidated through the energy explanation, revealing that shear induced ‘catching bonds’ originate from the crystal plane cleavage on the (111) plane. The present works offer significant advantageous for the assessment and comprehension of shear induced ‘catching bonds’ in other materials, and facilitate the developments of XFeSb (X = Nb, Ta)-based thermoelectric devices with excellent ductility.

摘要半赫斯勒材料具有優(yōu)異的熱電性能和力學(xué)性能,有潛力開發(fā)先進(jìn)的熱電器件,目前制約其器件發(fā)展的主要阻礙是其固有的脆性以及有限的延展性。在面心立方結(jié)構(gòu)中存在的剪切誘導(dǎo)“抓緊鍵”現(xiàn)象,能夠使材料表現(xiàn)出良好的延展性,而半赫斯勒材料的晶體結(jié)構(gòu)是三層嵌套的面心立方結(jié)構(gòu),其晶體結(jié)構(gòu)中可能也同樣存在剪切誘導(dǎo)“抓緊鍵”現(xiàn)象,使其具有潛在優(yōu)異的延展性。本文以半赫斯勒熱電材料XFeSb (X = Nb, Ta)SnNiY (Y = Ti, Zr, Hf)作為研究對(duì)象,通過(guò)第一性原理方法研究了其剪切變形失效過(guò)程。XFeSb (X = Nb, Ta)沿(111)/<-1-12>滑移系剪切時(shí)出現(xiàn)了剪切誘導(dǎo)“捕獲鍵”現(xiàn)象,釋放了內(nèi)應(yīng)力,從而使材料具有潛在的延展性?;趶V義堆垛層錯(cuò)能的熱動(dòng)力學(xué)準(zhǔn)則,該剪切誘導(dǎo)“抓緊鍵”現(xiàn)象被認(rèn)為是1/3(111)/<-1-12>不全位錯(cuò)運(yùn)動(dòng)形成的(111)/<-110>滑移。在SnNiY (Y = Ti, Zr, Hf)沿(111)/<-1-12>滑移系剪切的過(guò)程中,結(jié)構(gòu)始終保持完整性,不會(huì)產(chǎn)生剪切誘導(dǎo)“抓緊鍵”現(xiàn)象。通過(guò)能量解釋,揭示了剪切誘導(dǎo)“抓緊鍵”現(xiàn)象源于(111)平面上的晶面解理。本研究為評(píng)估和理解其他材料中的剪切誘導(dǎo)“抓緊鍵”現(xiàn)象提供了理論基礎(chǔ),并促進(jìn)了具有優(yōu)異延展性的XFeSb (X = Nb, Ta)基熱電器件的開發(fā)。

原創(chuàng)文章,作者:計(jì)算搬磚工程師,如若轉(zhuǎn)載,請(qǐng)注明來(lái)源華算科技,注明出處:http://www.xiubac.cn/index.php/2024/04/03/2b04583d2e/

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