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案件記録

Nanoribbon Transistors Formed from Layered Materials with Dopant for Reduced Strain

発明審査中
2閲覧数
20請求項 · 3 独立
§ Ⅰ

案件概要

出願人

David KOHEN; Rambert NAHM; Glenn A. GLASS; Borna OBRADOVIC; Stephen M. CEA; Matthew V. METZ; Siddharth CHOUKSEY; Jessica M. TORRES; Peter WELLS; Susmita GHOSE; Michael BABB; Natalie BRIGGS

発明者

David KOHEN; Rambert NAHM; Glenn A. GLASS; Borna OBRADOVIC; Stephen M. CEA; Matthew V. METZ; Siddharth CHOUKSEY; Jessica M. TORRES; Peter WELLS; Susmita GHOSE; Michael BABB; Natalie BRIGGS

IPC分類

H10D 84/85H10D 84/1

CPC分類

H10D84/856H10D84/167H10D84/186H10D84/851

A dopant may included in one or more sacrificial layers, e.g., silicon layers or silicon germanium layers, used for forming nanoribbon transistors. Adding a dopant to a silicon germanium layer may cause the silicon germanium to be more stress neutral, to prevent relaxation after etching stacks of individuated nanoribbons. Alternatively, when added to one or more sacrificial layers of silicon, the doped silicon layers may counteract elastic stress from the silicon germanium layers. The dopant layers may be included at various positions in a stack of materials. The dopant layer may include one or more dopants selected from carbon, arsenic, boron, and phosphorus.

原文(中国語)

A dopant may included in one or more sacrificial layers, e.g., silicon layers or silicon germanium layers, used for forming nanoribbon transistors. Adding a dopant to a silicon germanium layer may cause the silicon germanium to be more stress neutral, to prevent relaxation after etching stacks of individuated nanoribbons. Alternatively, when added to one or more sacrificial layers of silicon, the doped silicon layers may counteract elastic stress from the silicon germanium layers. The dopant layers may be included at various positions in a stack of materials. The dopant layer may include one or more dopants selected from carbon, arsenic, boron, and phosphorus.

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