Exploring the Role of Adsorption and Surface State on the Hydrophobicity of Rare Earth Oxides

被引:77
作者
Lundy, Ross [1 ,2 ]
Byrne, Conor [3 ]
Bogan, Justin [3 ]
Nolan, Kevin [1 ]
Collins, Maurice N. [2 ]
Dalton, Eric [2 ]
Enright, Ryan [1 ]
机构
[1] Nokia, Bell Labs Ireland, Thermal Management Res Grp, Efficient Energy Transfer ET Dept, Blanchardstown Business & Technol Pk, Dublin 15, Ireland
[2] Univ Limerick, Stokes Labs, Limerick V94 T9PX, County Limerick, Ireland
[3] Dublin City Univ, Sch Phys Sci, Dublin 9, Ireland
关键词
rare earth oxide; metal oxide; hydrophobic; water contact angle; dropwise promoter; adsorption; wetting hysteresis; heat transfer; DROPWISE CONDENSATION; CONTACT ANGLES; OXIDATION; WATER; ELECTRONEGATIVITY; TENSION; GOLD;
D O I
10.1021/acsami.7b01515
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Rare earth oxides. (REOs) are attracting attention for use as cost-effective, high-performance dropwise condensers because of their favorable thermal properties and robust nature. However, to engineer a suitable surface for industrial applications, the mechanism governing wetting must be first fully elucidated. Recent studies exploring the water wetting state of REOs have suggested that these oxides are intrinsically hydrophobic owing to the unique electronic structure of the lanthanide series. These claims have been countered with evidence that they are inherently hydrophilic and that adsorption of contaminants from the environment is responsible for the apparent hydrophobic nature of these surfaces. Here, using X-ray photoelectron spectroscopy and dynamic water contact angle measurements, we provide further evidence to show that REOs are intrinsically hydrophilic, with ceria demonstrating advancing water contact angles of approximate to 6 degrees in a clean surface state and similar surface energies to two transition metal oxides (greater than or similar to 72 mJ/m(2)). Using two model volatile species, it is shown that an adsorption mechanism is responsible for the apparent hydrophobic property observed in REOs as well as in transition metal oxides and silica. This is correlated with the screening of the polar surface energy contribution of the underlying oxide with apparent surface energies reduced to < 40 mJ/m(2) for the case of nonane adsorption. Moreover, we show that the degree of surface hydroxylation plays an important role in the observed contact angle hysteresis with the receding contact angle of ceria increasing from similar to 10 degrees to 45 degrees following thermal annealing, in an inert atmosphere. Our findings suggest that high atomic number metal oxides capable of strongly adsorbing volatile species may represent a viable paradigm toward realizing robust surface coating for industrial condensers if certain challenges can be overcome.
引用
收藏
页码:13751 / 13760
页数:10
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