Zhou Haibiao, Wang Lingfei, Hou Yubin, Huang Zhen, Lu Qingyou, Wu Wenbin
High Magnetic Field Laboratory, Chinese Academy of Sciences and University of Science and Technology of China, Hefei 230031, China.
Hefei National Laboratory for Physical Sciences at Microscale, University of Science and Technology of China, Hefei 230026, China.
Nat Commun. 2015 Nov 25;6:8980. doi: 10.1038/ncomms9980.
The competition among different phases in perovskite manganites is pronounced since their energies are very close under the interplay of charge, spin, orbital and lattice degrees of freedom. To reveal the roles of underlying interactions, many efforts have been devoted towards directly imaging phase transitions at microscopic scales. Here we show images of the charge-ordered insulator (COI) phase transition from a pure ferromagnetic metal with reducing field or increasing temperature in a strained phase-separated manganite film, using a home-built magnetic force microscope. Compared with the COI melting transition, this reverse transition is sharp, cooperative and martensitic-like with astonishingly unique yet diverse morphologies. The COI domains show variable-dimensional growth at different temperatures and their distribution can illustrate the delicate balance of the underlying interactions in manganites. Our findings also display how phase domain engineering is possible and how the phase competition can be tuned in a controllable manner.
在钙钛矿锰氧化物中,不同相之间的竞争非常显著,因为在电荷、自旋、轨道和晶格自由度的相互作用下,它们的能量非常接近。为了揭示潜在相互作用的作用,人们在微观尺度上直接成像相变方面付出了很多努力。在这里,我们使用自制的磁力显微镜展示了在应变相分离锰氧化物薄膜中,随着磁场减小或温度升高,从纯铁磁金属到电荷有序绝缘体(COI)相变的图像。与COI熔化转变相比,这种反向转变是尖锐的、协同的且类似马氏体的,具有惊人的独特而多样的形态。COI畴在不同温度下呈现出可变维度的生长,其分布可以说明锰氧化物中潜在相互作用的微妙平衡。我们的发现还展示了相畴工程如何成为可能,以及相竞争如何以可控的方式进行调节。