Hua Nelson, Breitner Franziska, Jesche Anton, Huang Shih Wen, Rüegg Christian, Gegenwart Philipp
PSI Center for Photon Science, Paul Scherrer Institute, 5232 Villigen PSI, Switzerland.
Experimental Physics VI, Center for Electronic Correlations and Magnetism, University of Augsburg, 86135 Augsburg, Germany.
Acta Crystallogr B Struct Sci Cryst Eng Mater. 2025 Apr 1;81(Pt 2):202-7. doi: 10.1107/S2052520625000587.
Manipulating the size and orientation of quantum materials is often used to tune emergent phenomena, but precise control of these parameters is also necessary from an experimental point of view. Various synthesis techniques already exist, such as epitaxial thin film growth and chemical etching, that are capable of producing specific sample dimensions with high precision. However, certain materials exist as single crystals that are often difficult to manipulate, thereby limiting their studies to a certain subset of experimental techniques. One particular class of these materials includes lithium and sodium iridates, which are promising candidates for hosting a Kitaev quantum spin liquid state. Here a controlled method of using a focused ion beam at grazing incidence to reduce the size of a β-LiIrO single crystal to a thickness of 1-2 µm is presented. Subsequent X-ray diffraction measurements show the lattice remains intact, albeit with a larger mosaic spread. The integrity of the magnetic order is also preserved as the temperature dependent magnetic diffraction peak follows the same trend as its bulk counterpart with a transition temperature at T = 37.5 K. Our study demonstrates a technique that opens up the possibility of nonequilibrium experiments where submicron thin samples are often essential.
操控量子材料的尺寸和取向通常用于调节涌现现象,但从实验角度来看,精确控制这些参数也是必要的。现已有各种合成技术,如外延薄膜生长和化学蚀刻,它们能够高精度地制造特定的样品尺寸。然而,某些材料以单晶形式存在,往往难以操控,从而将对它们的研究限制在特定的实验技术子集内。这类材料中的一个特定类别包括锂铱酸盐和钠铱酸盐,它们是有望承载基泰耶夫量子自旋液体态的候选材料。本文介绍了一种在掠入射时使用聚焦离子束将β-LiIrO单晶尺寸减小到1-2微米厚度的可控方法。随后的X射线衍射测量表明,晶格保持完整,尽管镶嵌扩展较大。磁有序的完整性也得以保留,因为与温度相关的磁衍射峰与块状对应物遵循相同的趋势,转变温度为T = 37.5K。我们的研究展示了一种技术,该技术开启了非平衡实验的可能性,在这类实验中,亚微米薄样品通常至关重要。