ti films
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Materialia ◽  
2021 ◽  
Vol 20 ◽  
pp. 101214
Author(s):  
C.F.S. Codeço ◽  
S.L.A. Mello ◽  
B.F. Magnani ◽  
M.M. Sant'Anna
Keyword(s):  
Ion Beam ◽  

Nanomaterials ◽  
2021 ◽  
Vol 11 (10) ◽  
pp. 2584
Author(s):  
Vyacheslav Zhigarkov ◽  
Ivan Volchkov ◽  
Vladimir Yusupov ◽  
Boris Chichkov

Laser bioprinting is a promising method for applications in biotechnology, tissue engineering, and regenerative medicine. It is based on a microdroplet transfer from a donor slide induced by laser pulse heating of a thin metal absorption film covered with a layer of hydrogel containing living cells (bioink). Due to the presence of the metal absorption layer, some debris in the form of metal nanoparticles is printed together with bioink microdroplets. In this article, experimental investigations of the amount of metal nanoparticles formed during the laser bioprinting process and transported in bioink microdroplets are performed. As metal absorption layers, Ti films with the thickness in the range of 25–400 nm, produced by magnetron spattering, were applied. Dependences of the volume of bioink microdroplets and the amount of Ti nanoparticles within them on the laser pulse fluence were obtained. It has been experimentally found that practically all nanoparticles remain in the hydrogel layer on the donor slide during bioprinting, with only a small fraction of them transferred within the microdroplet (0.5% to 2.5%). These results are very important for applications of laser bioprinting since the transferred metal nanoparticles can potentially affect living systems. The good news is that the amount of such nanoparticles is very low to produce any negative effect on the printed cells.


2021 ◽  
pp. 149678
Author(s):  
D. Dellasega ◽  
F. Mirani ◽  
D. Vavassori ◽  
C. Conti ◽  
M. Passoni

2021 ◽  
Author(s):  
Camilla Ferreira de Sá Codeço ◽  
Sérgio Luiz de Abreu Melo ◽  
Bárbara da Fonseca Magnani ◽  
Marcelo Martins Sant'Anna
Keyword(s):  
Ion Beam ◽  

Author(s):  
Р.В. Селюков ◽  
М.О. Изюмов ◽  
В.В. Наумов ◽  
Л.А. Мазалецкий

10-40 nm Ti films with mixed crystalline texture (100)+(001) are exposed to ion bombardment in inductively coupled Ar plasma by applying the bias -30 V to the films. It is found that such a treatment leads to the formation of (100) texture in films. This result is explained by the generation of the compressive stress in films as a result of ion bombardment. The thinner the film the less time is required to form the (100) texture.


2020 ◽  
Vol 63 (8) ◽  
pp. 404-412
Author(s):  
Hidetoshi KOMIYA ◽  
Yoshikazu TERANISHI ◽  
Ana B. CHAAR ◽  
Ming YANG ◽  
Tetsuhide SHIMIZU

Nanomaterials ◽  
2020 ◽  
Vol 10 (5) ◽  
pp. 935 ◽  
Author(s):  
Hashitha M. M. Munasinghe Arachchige ◽  
Dario Zappa ◽  
Nicola Poli ◽  
Nanda Gunawardhana ◽  
Nuwan H. Attanayake ◽  
...  

Herein, we report the catalyst assisted growth of TiO2 one-dimensional (1D) nanowires (NWs) on alumina substrates by the thermal oxidation technique. RF magnetron sputtering was used to deposit a thin Ti metallic layer on the alumina substrate, followed by an Au catalytic layer on the Ti metallic one. Thermal oxidation was carried out in an oxygen deficient environment. The optimal thermal growth temperature was 700 °C, in a mixture environment composed by Ar and O2. As a comparison, Ti films were also oxidized without the presence of the Au catalyst. However, without the Au catalyst, no growth of nanowires was observed. Furthermore, the effect of the oxidation temperature and the film thickness were also investigated. SEM, TEM, and EDX studies demonstrated the presence of Au nanoparticles on top of the NWs, indicating that the Au catalyst drove the growth process. Raman spectroscopy revealed the Rutile crystalline phase of TiO2 NWs. Gas testing measurements were carried out in the presence of a relative humidity of 40%, showing a reversible response to ethanol and H2 at various concentrations. Thanks to the moderate temperature and the easiness of the process, the presented synthesis technique is suitable to grow TiO2 NWs for many different applications.


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