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冷喷涂Cu50Ti20Ni30金属玻璃合金粉末在医疗和食品领域抗菌防护涂层中的潜在应用。

Potential applications of cold sprayed Cu50Ti20Ni30 metallic glassy alloy powders for antibacterial protective coating in medical and food sectors.

作者信息

El-Eskandrany M Sherif, Al-Azmi Ahmed

机构信息

Nanotechnology and Advanced Materials Program, Energy and Building Research Center, Kuwait Institute for Scientific Research, Safat, 13109 Kuwait, State of Kuwait.

Biotechnology Program, Environment and Life Sciences Research Center, Kuwait Institute for Scientific Research, Safat, 13109 Kuwait, State of Kuwait.

出版信息

J Mech Behav Biomed Mater. 2016 Mar;56:183-194. doi: 10.1016/j.jmbbm.2015.11.030. Epub 2015 Dec 3.

DOI:10.1016/j.jmbbm.2015.11.030
PMID:26703232
Abstract

Mechanical alloying was utilized for synthesizing of metallic glassy Cu50Ti20Ni30 alloy powders, using a low energy ball milling technique. The metallic glassy powders obtained after 100 h of ball milling had an average particle size of 1.7 mm in diameter and possessed excellent thermal stability, indexed by a relatively high glass transition temperature (358.3 °C) with a wide supercooled liquid region (61 °C). This amorphous phase crystallized into Ti2Cu and CuTiNi2 ordered phases through two overlapped crystallization temperatures at 419.3 °C and 447.5 °C, respectively. The total enthalpy change of crystallization was -4.8 kJ/mol. The glassy powders were employed as feedstock materials to double-face coating the surface of SUS 304 substrate, using cold spraying process under helium gas pressure at 400 °C. This coating material had an extraordinary high nanohardness value of 3.1 GPa. Moreover, it showed a high resistance to wear with a low value of the coefficient of friction ranging from 0.45 to 0.45. Biofilms were grown on 20-mm(2) SUS304 sheets coated coupons inoculated with 1.5 × 10(8) CFU ml(-1)E. coli. Significant biofilm inhibition (p The inhibition of biofilm formation by nanocrystalline powders of Cu-based provides a practical approach to achieve the inhibition of biofilms formation.

摘要

采用低能球磨技术,利用机械合金化法合成金属玻璃态Cu50Ti20Ni30合金粉末。球磨100小时后获得的金属玻璃态粉末平均粒径为1.7毫米,具有优异的热稳定性,其玻璃化转变温度相对较高(358.3℃),过冷液相区较宽(61℃)。该非晶相分别在419.3℃和447.5℃通过两个重叠的结晶温度结晶为Ti2Cu和CuTiNi2有序相。结晶的总焓变为-4.8 kJ/mol。将玻璃态粉末用作原料,在400℃的氦气压力下采用冷喷涂工艺对SUS 304基体表面进行双面涂层。这种涂层材料具有3.1 GPa的极高纳米硬度值。此外,它表现出高耐磨性,摩擦系数低,范围为0.45至0.45。在接种了1.5×10(8) CFU ml(-1)大肠杆菌的20平方毫米SUS304板材涂层试样上培养生物膜。显著的生物膜抑制作用(p 基于铜的纳米晶粉末对生物膜形成的抑制作用提供了一种实现生物膜形成抑制的实用方法。

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