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  4. Tunable Texture in ZnO Thin Films on 200 mm Wafers: Comparative Study of Zn(DMP)2 and Diethylzinc Precursors for ALD
 
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2026
Journal Article
Title

Tunable Texture in ZnO Thin Films on 200 mm Wafers: Comparative Study of Zn(DMP)2 and Diethylzinc Precursors for ALD

Abstract
Zinc oxide (ZnO) is a technologically important wide-bandgap semiconductor used in optoelectronics, sensing, and transparent electronic devices. Implementing ZnO thin films in such devices requires scalable, uniform, and compatible thin-film deposition methods. Atomic layer deposition (ALD) provides precise control over film thickness, composition, and conformality and is established in the semiconductor industry. ALD processes for growing ZnO primarily rely on the pyrophoric diethylzinc (DEZ) precursor. Recently, bis-3-(N,N-dimethylamino)propyl zinc ([Zn(DMP)<inf>2</inf>]) has emerged as a promising non-pyrophoric alternative, offering improved handling safety and enhanced thermal stability. However, its use has so far been limited to growth on small substrates in proof-of-concept experiments. In this work, a thermal ALD process using [Zn(DMP)<inf>2</inf>] and H<inf>2</inf>O as precursors was developed on industrially relevant 200 mm silicon wafers and compared with an established thermal process using DEZ and H<inf>2</inf>O. The effects of deposition temperature (150–300 °C), film thickness, and the underlying substrate material on film growth were systematically investigated. Structural, morphological, chemical, and electrical properties were evaluated using complementary and advanced materials characterization techniques. Across the entire 200 mm wafer area, ZnO films deposited from [Zn(DMP)<inf>2</inf>] exhibit excellent thickness uniformity and a near-stoichiometric composition comparable to those obtained with DEZ. While slightly higher resistivity and reduced crystallinity are observed at lower deposition temperatures, higher deposition temperatures yield comparable resistivity and an improved c-axis-oriented crystalline texture. Importantly, successful lithographic patterning and electrical characterization of van der Pauw devices confirm compatibility with advanced fabrication workflows. These results demonstrate that [Zn(DMP)<inf>2</inf>] can compete with DEZ in terms of film quality on large-area wafers and is safer to handle, providing a significant overall advantage.
Author(s)
Guzey, Katherine
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Brechmann, Noah Maximilian
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Najafidehaghani, Emad
Leibniz-Institut für Festkörper- und Werkstoffforschung Dresden
Gemming, Thomas
Leibniz-Institut für Festkörper- und Werkstoffforschung Dresden
Kaban, Ivan G.
Leibniz-Institut für Festkörper- und Werkstoffforschung Dresden
Schmickler, Marcel
Leibniz-Institut für Festkörper- und Werkstoffforschung Dresden
Glauber, Jean Pierre
Leibniz-Institut für Festkörper- und Werkstoffforschung Dresden
Hoffmann, Volker
Leibniz-Institut für Festkörper- und Werkstoffforschung Dresden
Rogalla, Detlef
Ruhr-Universitat Bochum
Pérez, Nicolás R.
Leibniz-Institut für Festkörper- und Werkstoffforschung Dresden
Parala, Harish
Leibniz-Institut für Festkörper- und Werkstoffforschung Dresden
Nielsch, Kornelius
Leibniz-Institut für Festkörper- und Werkstoffforschung Dresden
Schall-Giesecke, Anna Lena  orcid-logo
Fraunhofer Institute for Microelectronic Circuits and Systems IMS  
Devi, Anjana
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Boysen, Nils
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Journal
ACS applied electronic materials  
Open Access
File(s)
Download (6.58 MB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.1021/acsaelm.6c00358
10.24406/publica-9624
Additional link
Full text
Language
English
Fraunhofer-Institut für Mikroelektronische Schaltungen und Systeme IMS  
Keyword(s)
  • ALD

  • large-area deposition

  • precursor

  • thin films

  • wafer-scale integration

  • ZnO

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