The effects of deposition potential on the optical, morphological and mechanical properties of DLC films produced by electrochemical deposition technique at low voltages

Author:

Aslan Naim123,Başman Necati4,Uzun Orhan56,Erkovan Mustafa23,Yakuphanoğlu Fahrettin7

Affiliation:

1. Munzur University , Department of Metallurgical and Materials Engineering , Tunceli , Turkey

2. Sakarya University , Department of Metallurgical and Materials Engineering , Sakarya , Turkey

3. Sakarya University of Applied Sciences , Depart. of Metallurgical and Materials Engineering , Sakarya , Turkey

4. Bülent Ecevit University , Department of Electrical and Electronics Engineering , Zonguldak , Turkey

5. Rectorate of Bartın University , Bartın , Turkey

6. Ankara University , Department of Physics , Ankara , Turkey

7. Fırat University , Department of Physics , Elazıg , Turkey

Abstract

Abstract Diamond-like carbon (DLC) films were electrochemically deposited onto indium tin oxide (ITO) substrates using acetic acid and deionized water as electrolyte at low deposition voltages (2.4 V and 60 V). The transmittance of the films was investigated by UV spectrometry. Transmittance measurements versus wavelength revealed that the films transmit 86 % to 89 % light in visible region and band gap of the films varies between 3.87 eV and 3.89 eV. Atomic force microscopy (AFM) and scanning electron microscopy (SEM) were used for structural characterization to evaluate surface morphology of the DLC films. The grain size and the surface roughness increased for the films prepared at higher deposition potential, while their measured average height decreased. The mechanical properties (hardness H and elastic modulus Er) were determined from load-displacement curves which were obtained by using nanoindentation method. Hardness and elastic modulus of the films increased as the deposition voltage of the films increased from 2.4 V to 60 V.

Publisher

Walter de Gruyter GmbH

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

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