Please wait a minute...
Frontiers of Materials Science

ISSN 2095-025X

ISSN 2095-0268(Online)

CN 11-5985/TB

Postal Subscription Code 80-974

2018 Impact Factor: 1.701

Front. Mater. Sci.    2015, Vol. 9 Issue (3) : 311-316    https://doi.org/10.1007/s11706-015-0304-x
COMMUNICATION
Wettability manipulation of magnetic transition metal nanorod arrays by X-ray irradiation
Qian XIE1,Weipeng WANG1,Zheng XIE1,2,Shuang SHUANG1,Zhengcao LI1,Zhengjun ZHANG1,*()
1. Key Laboratory of Advanced Materials (MOE), School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China
2. High-Tech Institute of Xi’an, Xi’an 710025, China
 Download: PDF(1988 KB)   HTML
 Export: BibTeX | EndNote | Reference Manager | ProCite | RefWorks
Abstract

Wettability manipulation of glancing angle deposited Fe/Co/Ni nanorod arrays was realized by X-ray irradiation in ultra-high vacuum chamber. Reversible transition was also purchased by alternating ethanol immersion and X-ray irradiation. Alkyl group adsorption–desorption mechanism and corresponding morphology dependence of wettability manipulation were revealed.

Keywords nanorod array      transition metal      X-ray irradiation      wettability     
Corresponding Author(s): Zhengjun ZHANG   
Online First Date: 07 July 2015    Issue Date: 23 July 2015
 Cite this article:   
Zheng XIE,Shuang SHUANG,Zhengcao LI, et al. Wettability manipulation of magnetic transition metal nanorod arrays by X-ray irradiation[J]. Front. Mater. Sci., 2015, 9(3): 311-316.
 URL:  
https://academic.hep.com.cn/foms/EN/10.1007/s11706-015-0304-x
https://academic.hep.com.cn/foms/EN/Y2015/V9/I3/311
Fig.1  (a) XRD patterns, and FE-SEM observations of (b) Fe NRAs, (c) Co NRAs and (d) Ni NRAs.
Fig.2  (a)(b) TEM (SAD as inset) characterizations and (c)(d) XPS spectra of Ni NRAs on quartz substrate. XPS fitting was performed and highlighted the Ni-C bond.
Fig.3  Wetting behaviors of as-received and corresponding X-ray irradiated (a)(b) Fe NRAs, (c)(d) Co NRAs, and (e)(f) Ni NRAs.
Fig.4   (a) Hydrophilic-to-hydrophobic transition of Ni NRAs on quartz substrate. (b) Reversible transitions of wettability by alternating the X-ray irradiation and ethanol immersion of Fe/Co/Ni NRAs, respectively.
1 Feng X J, Jiang L. Design and creation of superwetting/antiwetting surfaces. Advanced Materials, 2006, 18(23): 3063–3078
2 Xin B, Hao J. Reversibly switchable wettability. Chemical Society Reviews, 2010, 39(2): 769–782
3 Yao X, Song Y, Jiang L. Applications of bio-inspired special wettable surfaces. Advanced Materials, 2011, 23(6): 719–734
4 Wang J, Zhang Y, Wang S, . Bioinspired colloidal photonic crystals with controllable wettability. Accounts of Chemical Research, 2011, 44(6): 405–415
5 Wang R, Hashimoto K, Fujishima A, . Light-induced amphiphilic surfaces. Nature, 1997, 388(6641): 431–432
6 Caputo G, Cortese B, Nobile C, . Reversibly light-switchable wettability of hybrid organic/inorganic surfaces with dual micro-/nanoscale roughness. Advanced Functional Materials, 2009, 19(8): 1149–1157
7 Zakrevskyy Y, Richter M, Zakrevska S, . Light-controlled reversible manipulation of microgel particle size using azobenzene-containing surfactant. Advanced Functional Materials, 2012, 22(23): 5000–5009
8 Liu K, Jiang L. Metallic surfaces with special wettability. Nanoscale, 2011, 3(3): 825–838
9 Kietzig A M, Hatzikiriakos S G, Englezos P. Patterned superhydrophobic metallic surfaces. Langmuir, 2009, 25(8): 4821–4827
10 Kannarpady G K, Khedir K R, Ishihara H, . Controlled growth of self-organized hexagonal arrays of metallic nanorods using template-assisted glancing angle deposition for superhydrophobic applications. ACS Applied Materials & Interfaces, 2011, 3(7): 2332–2340
11 Arora H S, Xu Q, Xia Z H, . Wettability of nanotextured metallic glass surfaces. Scripta Materialia, 2013, 69(10): 732–735
12 Moradi S, Kamal S, Englezos P, . Femtosecond laser irradiation of metallic surfaces: effects of laser parameters on superhydrophobicity. Nanotechnology, 2013, 24(41): 415302
13 Heister K, Zharnikov M, Grunze M, . Characterization of X-ray induced damage in alkanethiolate monolayers by high-resolution photoelectron spectroscopy. Langmuir, 2001, 17(1): 8–11
14 Weon B M, Kwon Y B, Won K H, . Ablation and deposition of poly(dimethylsiloxane) with X-rays. ChemPhysChem, 2010, 11(1): 115–118
15 Kwon Y B, Weon B M, Won K H, . X-ray-induced changes in wettability. Langmuir, 2009, 25(4): 1927–1929
16 Kukovecz A, Konya Z, Nagaraju N, . Catalytic synthesis of carbon nanotubes over Co, Fe and Ni containing conventional and sol–gel silica–aluminas. Physical Chemistry Chemical Physics, 2000, 2(13): 3071–3076
17 di Lena F, Matyjaszewski K. Transition metal catalysts for controlled radical polymerization. Progress in Polymer Science, 2010, 35(8): 959–1021
18 Slagtern A, Swaan H M, Olsbye U, . Catalytic partial oxidation of methane over Ni-, Co- and Fe-based catalysts. Catalysis Today, 1998, 46(2-3): 107–115
19 Moruzzi V L, Marcus P M, Schwarz K, . Ferromagnetic phases of bcc and fcc Fe, Co, and Ni. Physical Review B: Condensed Matter and Materials Physics, 1986, 34(3): 1784–1791
20 Drelich J, Miller J D, Good R J. The effect of drop (bubble) size on advancing and receding contact angles for heterogeneous and rough solid surfaces as observed with sessile-drop and captive-bubble techniques. Journal of Colloid and Interface Science, 1996, 179(1): 37–50
21 Robbie K, Brett M J. Sculptured thin films and glancing angle deposition: Growth mechanics and applications. Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films, 1997, 15(3): 1460–1465
22 Boinovich L B, Emelyanenko A M, Pashinin A S, . Origins of thermodynamically stable superhydrophobicity of boron nitride nanotubes coatings. Langmuir, 2012, 28(2): 1206–1216
23 Aronov D, Molotskii M, Rosenman G. Charge-induced wettability modification. Applied Physics Letters, 2007, 90(10): 104104: (3 pages)
24 Jiang Q, Lu H M. Size dependent interface energy and its applications. Surface Science Reports, 2008, 63(10): 427–464
25 Zaera F. An organometallic guide to the chemistry of hydrocarbon moieties on transition metal surfaces. Chemical Reviews, 1995, 95(8): 2651–2693
26 Zaera F. Preparation and reactivity of alkyl groups adsorbed on metal surfaces. Accounts of Chemical Research, 1992, 25(6): 260–265
27 Wenzel R N. Resistance of solid surfaces to wetting by water. Industrial & Engineering Chemistry, 1936, 28(8): 988–994
[1] Shenshen OUYANG, Tao WANG, Longgang ZHONG, Shunli WANG, Sheng WANG. Utilization of surface differences to improve dyeing properties of poly(m-phenylene isophthalamide) membranes[J]. Front. Mater. Sci., 2018, 12(2): 129-138.
[2] Qian WANG, Guihua MENG, Jianning WU, Yixi WANG, Zhiyong LIU, Xuhong GUO. Novel robust cellulose-based foam with pH and light dual-response for oil recovery[J]. Front. Mater. Sci., 2018, 12(2): 118-128.
[3] Jun-Feng YANG, Braham PARAKASH, Jens HARDELL, Qian-Feng FANG. Tribological properties of transition metal di-chalcogenide based lubricant coatings[J]. Front Mater Sci, 2012, 6(2): 116-127.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed