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熔盐屏蔽固态合成(MS)反应驱动制备纯度大于99%的TiAlC MAX相:MAX相纯度对MXenes层间间距和钠离子存储的影响

Molten salt-shielded solid-state synthesis (MS) reaction-driven >99% pure TiAlC MAX phase: effect of MAX phase purity on the interlayer separation of MXenes and Na-ion storage.

作者信息

Choudhary Ekta, Manjunath Vishesh, Kalubarme Ramchandra, Jangir Ravindra, Devan Rupesh S

机构信息

Department of Metallurgical Engineering and Materials Science, Indian Institute of Technology Indore, Simrol, Khandwa Road, Indore, 453552, India.

Department of Physics, Indian Institute of Technology Indore, Simrol, Khandwa Road, Indore, 453552, India.

出版信息

Nanoscale. 2024 Sep 26;16(37):17599-17615. doi: 10.1039/d4nr02512a.

Abstract

TiC-X MXenes have attracted tremendous research interest because their 2D laminar morphology provides numerous functional applications. The application options rely on the purity and interlayer spacing of MXenes, which eventually depend on the purity of the MAX phase. This motivated us to synthesize pure MAX phases to produce MXenes at large scale using simpler and less expensive techniques. However, producing prerequisite pure MAX phases at atmospheric pressure and relatively lower temperatures is still a challenging task. This study reports the synthesis of thermally stable pure MAX phases (and MXenes) by systematically varying the molar ratio of the precursors, reaction temperature, and reaction time using a novel MS process under atmospheric pressure conditions. The purity of MAX phases under different synthesis conditions shows a direct interrelationship with the 2D laminar morphology of MXenes. The highest purity of >99% for the MAX phase was achieved by reacting Ti : Al : C precursors in a 3 : 1.5 : 1.9 molar ratio at 1350 °C for 90 min and delivered highly distinctive 2D nanostructured laminar MXenes with larger interlayer spacing and specific surface area (, 8.8 ± 0.1 m g), which are superior to those in previously reported works. These results reveal that the precursor molar ratios and reaction conditions tailor the MAX phase purity, thereupon, they are crucial for achieving good quality 2D laminar MXenes with large specific surface areas, further enhancing the performance of MXene-related devices. The developed MS-MXenes, when probed as electrodes for Na ion applications, show excellent initial and reversible capacity values of 142 mA h g and 103 mA h g (at 50 mA g), respectively.

摘要

TiC-X MXenes因其二维层状形态提供了众多功能应用而吸引了极大的研究兴趣。应用选项取决于MXenes的纯度和层间距,而这最终又取决于MAX相的纯度。这促使我们合成纯MAX相,以便使用更简单、更便宜的技术大规模生产MXenes。然而,在大气压和相对较低温度下制备所需的纯MAX相仍然是一项具有挑战性的任务。本研究报告了在大气压条件下,通过使用一种新颖的MS工艺系统地改变前驱体的摩尔比、反应温度和反应时间,合成热稳定的纯MAX相(和MXenes)。不同合成条件下MAX相的纯度与MXenes的二维层状形态呈现直接的相互关系。通过使Ti : Al : C前驱体以3 : 1.5 : 1.9的摩尔比在1350°C下反应90分钟,获得了纯度>99%的MAX相,并得到了具有更大层间距和比表面积(,8.8±0.1 m g)的高度独特的二维纳米结构层状MXenes,优于先前报道的工作。这些结果表明,前驱体摩尔比和反应条件决定了MAX相的纯度,因此,它们对于获得具有大比表面积的高质量二维层状MXenes至关重要,进而增强了与MXene相关器件的性能。所开发的MS-MXenes在用作钠离子应用的电极时,分别显示出优异的初始和可逆容量值,分别为142 mA h g和103 mA h g(在50 mA g下)。

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