论文标题

铜邻苯烷氨酸分子磁铁微型库的制造和微拉曼光谱

Fabrication and micro-Raman spectroscopy of arrays of copper phthalocyanine molecular-magnet microdisks

论文作者

Liška, Jiří, Krajňák, Tomáš, Kepič, Peter, Konečný, Martin, Hrtoň, Martin, Křápek, Vlastimil, Nováček, Zdeněk, Tesi, Lorenzo, van Slageren, Joris, Čechal, Jan, Šikola, Tomáš

论文摘要

作为有机半导体和分子磁铁,邻苯丙氨酸提供了大量的工业或高科技应用,从染料和颜料到气体传感器,分子电子,旋转三位型和量子计算。铜邻苯胺(CUPC)属于最常用的邻苯丙氨酸烷,通常以粉末或膜的形式,但自我生长的纳米线也是已知的。在这里,我们根据使用电子束光刻和其他步骤来描述相反的,即自上而下的方法,即基于cupc微观结构(微型风格)的有序阵列的制造。在这种方法的关键点中,属于适当的抗药性和溶剂的选择。制造的CUPC微型烟雾的直径为5 $ m $ m,高度从7到70 nm。薄膜和微型风险的微摩曼光谱揭示了与顺磁形式相关的结晶$β$相。随着激光功率增加的其他测量值显示出明显的变化($δΩ$ 〜7.1 cm $^{ - 1} $),并在1532 rel $ \ cdot $ \ cdot $ cm $ cm $^{ - 1} $上扩大了峰值。观察到的平滑变化不包括相变并确认热稳定的多晶型物。我们使用常见光刻抗性的多功能制造技术为制造各种微型/纳米结构(例如微型磁铁,异质结构或有机电子设备)带来了新的可能性。

Phthalocyanines as organic semiconductors and molecular magnets provide plenty of industrial or high-tech applications from dyes and pigments up to gas sensors, molecular electronics, spintronics and quantum computing. Copper phthalocyanine (CuPc) belongs among the most used phthalocyanines, typically in the form of powder or films but self-grown nanowires are also known. Here we describe an opposite, i.e., top-down approach based on fabrication of ordered arrays of CuPc microstructures (microdisks) using electron beam lithography and other steps. Among critical points of this approach belongs a choice of a proper resist and a solvent. Fabricated CuPc microdisks have a diameter of 5 $μ$m and heights from 7 up to 70 nm. Micro-Raman spectroscopy of the films and microdisks reveals a crystalline $β$ phase associated with a paramagnetic form. Additional measurements with an increasing laser power show a significant shift ($Δω$ ~ 7.1 cm$^{-1}$ ) and broadening of a peak at 1532 rel$\cdot$cm$^{-1}$ corresponding to the phonon B1g mode. The observed smooth changes exclude a phase transition and confirm the thermally stable polymorph. Our versatile fabrication technique using the common lithographic resist brings new possibilities for the fabrication of various micro/nanostructures such as micromagnets, heterostructures or organic electronic devices.

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