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使用四甲基氢氧化铵和水或氨水进行HfO薄膜的原子层沉积。

Atomic Layer Deposition of HfO Films Using TDMAH and Water or Ammonia Water.

作者信息

Gieraltowska Sylwia, Wachnicki Lukasz, Dluzewski Piotr, Witkowski Bartlomiej S, Godlewski Marek, Guziewicz Elzbieta

机构信息

Institute of Physics, Polish Academy of Sciences, Aleja Lotnikow 32/46, 02-668 Warsaw, Poland.

出版信息

Materials (Basel). 2023 May 30;16(11):4077. doi: 10.3390/ma16114077.

Abstract

Atomic layer deposition of HfO from TDMAH and water or ammonia water at different temperatures below 400 °C is studied. Growth per cycle (GPC) has been recorded in the range of 1.2-1.6 Å. At low temperatures (≤100 °C), the films grew faster and are structurally more disordered, amorphous and/or polycrystalline with crystal sizes up to 29 nm, compared to the films grown at higher temperatures. At high temperatures of 240 °C, the films are better crystallized with crystal sizes of 38-40 nm but grew slower. GPC, dielectric constant, and crystalline structure are improved by depositing at temperatures above 300 °C. The dielectric constant value and the roughness of the films have been determined for monoclinic HfO, a mixture of orthorhombic and monoclinic, as well as for amorphous HfO. Moreover, the present study shows that the increase in the dielectric constant of the films can be achieved by using ammonia water as an oxygen precursor in the ALD growth. The detailed investigations of the relationship between HfO properties and growth parameters presented here have not been reported so far, and the possibilities of fine-tuning and controlling the structure and performance of these layers are still being sought.

摘要

研究了在400℃以下不同温度下,由四甲基氢氧化铵(TDMAH)与水或氨水进行原子层沉积氧化铪(HfO)的情况。每个周期的生长速率(GPC)记录在1.2 - 1.6 Å范围内。与在较高温度下生长的薄膜相比,在低温(≤100℃)时,薄膜生长更快,结构更无序,为非晶态和/或多晶态,晶体尺寸可达29 nm。在240℃的高温下,薄膜结晶更好,晶体尺寸为38 - 40 nm,但生长较慢。在300℃以上的温度下沉积可改善GPC、介电常数和晶体结构。已测定了单斜相HfO、正交相和单斜相混合物以及非晶态HfO薄膜的介电常数和粗糙度。此外,本研究表明,在ALD生长中使用氨水作为氧前驱体可提高薄膜的介电常数。目前尚未报道此处对HfO特性与生长参数之间关系的详细研究,仍在探索微调及控制这些层结构和性能的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4d75/10254648/2f698a841e23/materials-16-04077-g001.jpg

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