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Thickness-Driven Modulation of Electronic Transport in SnSe2-grown Films by Low-Temperature Atomic Layer Deposition

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URI: http://hdl.handle.net/10498/39317

DOI: 10.1002/AELM.202500560

ISSN: 2199-160X

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Adv Elect Materials - 2025 - Ruiz‐Clavijo - Thickness‐Driven Modulation of Electronic Transport in SnSe2‐grown Films by.pdf (4.937Mb)
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Author/s
Ruiz-Clavijo, Alejandra; Bahrami, Amin; Charvot, Jaroslav; Lehmann, Sebastian; Julin, Jaakko; Wolf, Daniel; Giebeler, Lars; Wrzesińska Lashkova, Angelika; Pieck, Fabian; Outón Porras, JavierAuthority UCA; Tonner-Zech, Ralf; Bureš, Filip; Vaynzof, Yana; Blanco Ollero, EduardoAuthority UCA; Nielsch, Kornelius
Date
2026
Department
Física Aplicada; Física de la Materia Condensada
Source
Advanced Electronic Materials - 2026, Vol. 12, n. 2, e00560
Abstract
Low-temperature atomic layer deposition (ALD) is increasingly important for the integration of layered metal dichalcogenides such as tin diselenide (SnSe2) into advanced nanoelectronic devices, where compatibility with temperature-sensitive substrates and precise thickness control are essential. Using a novel and highly reactive selenium precursor, namely, bis(trimethylstannyl)selenide or Se(SnMe3)2, SnSe2 films are deposited at reduced temperatures. As-deposited films are initially amorphous, however, post-deposition annealing at 250°C induces crystallization. Structural analysis reveals a clear evolution in crystallinity: ultrathin films (∼25 nm) exhibit nearly single-crystalline, defect-free domains, while thicker films (∼100 nm) transition to a polycrystalline structure. This controlled variation in crystal quality directly influences the electronic transport properties, demonstrating the potential of low-temperature ALD combined with mild annealing for scalable fabrication of high-performance, thickness-engineered SnSe2-based devices.
Subjects
2D materials; low temperature ALD; SnSe2; thin film; transport properties
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  • Articulos Científicos Fis. Ap. [311]
  • Articulos Científicos Fis. Mat. Cond. [129]
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