Tailoring the Surface Properties of ZnO Nanowires by ALD Deposition

Author:

Baratto Camilla1ORCID,Faglia Guido1,Dang Thi Than Le2,Ferroni Matteo34,Holovanova Viktoria5,Nazarchuk Bohdan5,Hakola Hanna6,Niemi Tapio6,Tkachenko Nikolai6,Golovanov Viacheslav56

Affiliation:

1. CNR‐INO Unit of Brescia and DII University of Brescia Via Branze 45 Brescia 25123 Italy

2. Faculty of Electronic Materials and Devices School of Materials Science and Engineering (SMSE) Hanoi University of Science and Technology (HUST) No. 1, Dai Co Viet Str. Hanoi 100000 Vietnam

3. DICATAM University of Brescia Via Branze 45 Brescia 25123 Italy

4. CNR‐IMM Via Gobetti, 101 Bologna 40129 Italy

5. South–Ukrainian National University Staroportofrankovskaya str. 26 Odessa 65020 Ukraine

6. Faculty of Engineering and Natural Sciences Tampere University Korkeakoulunkatu Tampere FIN‐33720 Finland

Abstract

AbstractInnovative research on metal‐oxide gas sensors involves nanostructuring and surface modification as key elements to tailor sensitivity and selectivity. This work addresses a ZnO nanowire‐based sensing device obtained by coupling a lithographically prepared substrate with hydrothermal ZnO growth, to align and interconnect the nanowires between two electrical contacts. Furthermore, conformal coating by atomic layer deposition technique allows functionalization of the surface of the nanowires with sub‐monolayers of Al2O3 and TiO2. A detailed analysis is carried out from a morphological and structural point of view with photoluminescence and Raman spectroscopy and electron microscopy. The material characterization results are analyzed in comparison with the functional characterization in gases toward reducing (NO2) and oxidizing (H2S) gases. Unparalleled sensing enhancement with Atomic Layer Deposition functionalization is obtained for NO2 detection. The passivation role of surface states is discussed combining information from experimental techniques with a proposed model.

Publisher

Wiley

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