Department of Chemical and Biomolecular Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
Nanoscale. 2012 Oct 21;4(20):6543-52. doi: 10.1039/c2nr32016a.
Nanoparticle thin films (NTFs) exhibit multifunctionality, making them useful for numerous advanced applications including energy storage and conversion, biosensing and photonics. Poor mechanical reliability and durability of NTFs, however, limit their industrial and commercial applications. Atomic layer deposition (ALD) represents a unique opportunity to enhance the mechanical properties of NTFs at a relatively low temperature without drastically changing their original structure and functionality. In this work, we study how ALD of different materials, Al(2)O(3), TiO(2), and SiO(2), affects the mechanical properties of TiO(2) and SiO(2) NTFs. Our results demonstrate that the mechanical properties of ALD-reinforced NTFs are dominantly influenced by the mechanical properties of the ALD materials rather than by the compositional matching between ALD and nanoparticle materials. Among the three ALD materials, Al(2)O(3) ALD provides the best enhancement in the modulus and hardness of the NTFs. Interestingly, Al(2)O(3) ALD is able to enhance not only the modulus and hardness but also the toughness of NTFs. Our study presents an additional benefit of depositing nanometer scale ALD layers in NTFs; that is, we find that the hardness and modulus of ultrathin ALD layers (<5 nm) can be estimated from the mechanical properties of ALD-reinforced NTFs using a simple mixing rule. This investigation also provides insight into the use of nanoindentation for testing the mechanical properties of ultrathin ALD-reinforced NTFs.
纳米颗粒薄膜(NTFs)表现出多功能性,使其在许多先进应用中非常有用,包括储能和转换、生物传感和光子学。然而,NTFs 的机械可靠性和耐久性差限制了它们的工业和商业应用。原子层沉积(ALD)代表了一个独特的机会,可以在相对较低的温度下增强 NTFs 的机械性能,而不会极大地改变它们的原始结构和功能。在这项工作中,我们研究了不同材料(Al2O3、TiO2 和 SiO2)的 ALD 如何影响 TiO2 和 SiO2 NTFs 的机械性能。我们的结果表明,ALD 增强 NTFs 的机械性能主要受 ALD 材料的机械性能影响,而不受 ALD 和纳米颗粒材料之间的组成匹配影响。在这三种 ALD 材料中,Al2O3 ALD 对 NTFs 模量和硬度的增强效果最佳。有趣的是,Al2O3 ALD 不仅能够增强 NTFs 的模量和硬度,还能够增强其韧性。我们的研究提出了在 NTFs 中沉积纳米级 ALD 层的另一个好处;也就是说,我们发现使用简单的混合规则,可以根据 ALD 增强 NTFs 的机械性能来估计超薄 ALD 层(<5nm)的硬度和模量。这项研究还为使用纳米压痕法测试超薄 ALD 增强 NTFs 的机械性能提供了深入了解。