论文标题

控制石墨烯/蓝宝石的远程,针孔和范德华的平衡

Controlling the balance between remote, pinhole, and van der Waals epitaxy of Heusler films on graphene/sapphire

论文作者

Du, Dongxue, Jung, Taehwan, Manzo, Sebastian, LaDuca, Zachary T., Zheng, Xiaoqi, Su, Katherine, McChesney, Jessica L., Arnold, Michael S., Kawasaki, Jason K.

论文摘要

单层石墨烯上的远程外观有望合成高度晶格不匹配的材料,剥落独立膜以及重复使用昂贵的底物。但是,远程机制的明确实验证据仍然难以捉摸。在许多情况下,由于转移的石墨烯/底物界面处的污染物,诸如针孔种子的外侧外观或范德华的替代机制表现外观可以解释产生的可剥落的单晶膜。在这里,我们发现,蓝宝石底物上干净石墨烯上的赫斯勒化合物GDPTSB的生长产生了30度旋转的外延上层结构,而Pinhole或van der waals的外观上都无法解释。与直接支配0度结构域相比,随着生长温度的降低,该30度域的体积分数增加,我们将其归因于低温下的表面扩散较慢,这有利于远程外交,而在高温下更快的表面扩散则偏爱小针孔的外观。我们进一步表明,需要仔细的石墨烯/底物退火($ t \ sim 700 ^\ circ c $),并且需要考虑膜/底物与膜/石墨烯格烯格烯不匹配,以便为包括LAPTSB和GDAUGE在内的各种Heusler Films的基础底物获得外观下降。 30度旋转的上层建筑提供了可能的实验指纹,因为它与领先的替代机制不一致。

Remote epitaxy on monolayer graphene is promising for synthesis of highly lattice mismatched materials, exfoliation of free-standing membranes, and re-use of expensive substrates. However, clear experimental evidence of a remote mechanism remains elusive. In many cases, due to contaminants at the transferred graphene/substrate interface, alternative mechanisms such as pinhole-seeded lateral epitaxy or van der Waals epitaxy can explain the resulting exfoliatable single-crystalline films. Here, we find that growth of the Heusler compound GdPtSb on clean graphene on sapphire substrates produces a 30 degree rotated epitaxial superstructure that cannot be explained by pinhole or van der Waals epitaxy. With decreasing growth temperature the volume fraction of this 30 degree domain increases compared to the direct epitaxial 0 degree domain, which we attribute to slower surface diffusion at low temperature that favors remote epitaxy, compared to faster surface diffusion at high temperature that favors pinhole epitaxy. We further show that careful graphene/substrate annealing ($T\sim 700 ^\circ C$) and consideration of the film/substrate vs film/graphene lattice mismatch are required to obtain epitaxy to the underlying substrate for a variety of other Heusler films, including LaPtSb and GdAuGe. The 30 degree rotated superstructure provides a possible experimental fingerprint of remote epitaxy since it is inconsistent with the leading alternative mechanisms.

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