论文标题

通过高级远程外观从单个晶圆中乘以独立的半导体膜

Multiplication of freestanding semiconductor membranes from a single wafer by advanced remote epitaxy

论文作者

Kim, Hyunseok, Liu, Yunpeng, Lu, Kuangye, Chang, Celesta S., Qiao, Kuan, Kim, Ki Seok, Park, Bo-In, Jeong, Junseok, Zhu, Menglin, Suh, Jun Min, Baek, Yongmin, Ji, You Jin, Kang, Sungsu, Lee, Sangho, Han, Ne Myo, Kim, Chansoo, Choi, Chanyeol, Zhang, Xinyuan, Wang, Haozhe, Kong, Lingping, Park, Jungwon, Lee, Kyusang, Yeom, Geun Young, Kim, Sungkyu, Hwang, Jinwoo, Kong, Jing, Bae, Sang-Hoon, Kong, Wei, Kim, Jeehwan

论文摘要

独立的单晶膜是功能电子设备的重要组成部分。特别是,III-N和III-V等半导体膜的化合物为光电,高功率电子和高速计算提供了绝佳的机会。尽管巨大的努力通过从供体晶圆脱离外延层来生产此类膜,但是,使用实际过程收集外延层仍然具有挑战性。在这里,我们展示了一种在晶圆尺度上生长和收集具有极高吞吐量的多个外延膜的方法。为此,2D材料直接在外部外观系统中的III-N和III-V底物上形成,该材料可实现由多个交替层的2D材料和外延层组成的高级远程外观方案,这些层可以由单个外部下车运行形成。然后,通过逐层剥离来收集多堆栈结构中的每个层压器,从而从单个晶片中产生具有前所未有的吞吐量的多个独立膜。由于2D材料允许在界面上脱皮而不会损坏粘材层或底物,因此可以将晶片重新用于随后的膜产生。因此,这项工作代表了朝着高通量和低成本产生的单晶膜迈出的有意义的步骤,而单晶膜可能是杂货。

Freestanding single-crystalline membranes are an important building block for functional electronics. Especially, compounds semiconductor membranes such as III-N and III-V offer great opportunities for optoelectronics, high-power electronics, and high-speed computing. Despite huge efforts to produce such membranes by detaching epitaxial layers from donor wafers, however, it is still challenging to harvest epitaxial layers using practical processes. Here, we demonstrate a method to grow and harvest multiple epitaxial membranes with extremely high throughput at the wafer scale. For this, 2D materials are directly formed on III-N and III-V substrates in epitaxy systems, which enables an advanced remote epitaxy scheme comprised of multiple alternating layers of 2D materials and epitaxial layers that can be formed by a single epitaxy run. Each epilayer in the multi-stack structure is then harvested by layer-by-layer peeling, producing multiple freestanding membranes with unprecedented throughput from a single wafer. Because 2D materials allow peeling at the interface without damaging the epilayer or the substrate, wafers can be reused for subsequent membrane production. Therefore, this work represents a meaningful step toward high-throughput and low-cost production of single-crystal membranes that can be heterointegrated.

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