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Advanced Experimental Methods for Low-temperature Magnetotransport Measurement of Novel Materials

机译:新型材料低温磁传输测量的先进实验方法

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摘要

Novel electronic materials are often produced for the first time by synthesis processes that yield bulk crystals (in contrast to single crystal thin film synthesis) for the purpose of exploratory materials research. Certain materials pose a challenge wherein the traditional bulk Hall bar device fabrication method is insufficient to produce a measureable device for sample transport measurement, principally because the single crystal size is too small to attach wire leads to the sample in a Hall bar configuration. This can be, for example, because the first batch of a new material synthesized yields very small single crystals or because flakes of samples of one to very few monolayers are desired. In order to enable rapid characterization of materials that may be carried out in parallel with improvements to their growth methodology, a method of device fabrication for very small samples has been devised to permit the characterization of novel materials as soon as a preliminary batch has been produced. A slight variation of this methodology is applicable to producing devices using exfoliated samples of two-dimensional materials such as graphene, hexagonal boron nitride (hBN), and transition metal dichalcogenides (TMDs), as well as multilayer heterostructures of such materials. Here we present detailed protocols for the experimental device fabrication of fragments and flakes of novel materials with micron-sized dimensions onto substrate and subsequent measurement in a commercial superconducting magnet, dry helium close-cycle cryostat magnetotransport system at temperatures down to 0.300 K and magnetic fields up to 12 T.
机译:新型电子材料通常是通过合成工艺首次生产的,该合成工艺会产生块状晶体(与单晶薄膜合成相反),目的是进行探索性材料研究。某些材料提出了挑战,其中传统的散装霍尔棒器件的制造方法不足以生产用于样品传输测量的可测量器件,这主要是因为单晶尺寸太小而无法将导线连接到霍尔棒配置中的样品上。例如,这可能是因为合成的第一批新材料会产生非常小的单晶,或者因为需要一层或很少一层单层样品的薄片。为了能够快速表征材料,同时改进其生长方法,可以设计出一种非常小的样品制造装置的方法,以便在生产出第一批样品后立即表征新型材料。 。此方法的微小变化适用于使用二维材料(例如石墨烯,六方氮化硼(hBN)和过渡金属二卤化二金属钛(TMD))的剥离样品以及此类材料的多层异质结构生产设备。在这里,我们为实验设备制造具有微米尺寸的新型材料的碎片和薄片的实验设备制造提供详细的协议,并将其在商用超导磁体,干氦闭环低温恒温器磁力运输系统中在低至0.300 K的温度和磁场下进行测量高达12吨

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