Highly conductive and flexible fiber for textile electronics obtained by extremely low-temperature atomic layer deposition of Pt

被引:0
作者
Jaehong Lee
Jaehong Yoon
Hyun Gu Kim
Subin Kang
Woo-Suk Oh
Hassan Algadi
Saleh Al-Sayari
Bonggeun Shong
Soo-Hyun Kim
Hyungjun Kim
Taeyoon Lee
Han-Bo-Ram Lee
机构
[1] School of Electrical and Electronic Engineering,Department of Materials Science and Engineering
[2] Yonsei University,Department of Chemistry
[3] Incheon National University,undefined
[4] Chungnam National University,undefined
[5] College of Science and Arts at Sharurah,undefined
[6] Promising Center for Sensors and Electronic Devices,undefined
[7] Najran University,undefined
[8] School of Materials Science and Engineering,undefined
[9] Yeungnam University,undefined
来源
NPG Asia Materials | 2016年 / 8卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Thermal atomic layer deposition (ALD) of metal has generally been achieved at high temperatures of around 300 °C or at relatively low temperatures with highly reactive counter reactants, including plasma radicals and O3, which can induce severe damage to substrates. Here, the growth of metallic Pt layers by ALD at a low temperature of 80 °C is achieved by using [(1,2,5,6-η)-1,5-hexadiene]-dimethyl-platinum(II) (HDMP) and O2 as the Pt precursor and counter reactant, respectively. ALD results in the successful growth of continuous Pt layers at the low temperature without any reactive reactants owing to the low activation energy of the HDMP precursor for surface reactions. Because of the high reactivity of the precursor, the growth of a pure Pt layer is achieved on various thermally weak substrates, leading to the fabrication of high-performance conductive cotton fibers by ALD. A capacitive-type textile pressure sensor is successfully demonstrated by stacking elastomeric rubber-coated conductive cotton fibers perpendicularly and integrating them onto a fabric with a 7 × 8 array configuration to identify the features of the applied pressure, which can be effectively utilized as a new platform for future wearable and textile electronics.
引用
收藏
页码:e331 / e331
相关论文
共 227 条
  • [11] Hyde GK(2010)Temperature-dependent subsurface growth during atomic layer deposition on polypropylene and cellulose fibers Langmuir 26 8239-5660
  • [12] Park KJ(2005)Atomic layer deposition in nanometer-level replication of cellulosic substances and preparation of photocatalytic TiO J. Am. Chem. Soc. 127 14178-6846
  • [13] Stewart SM(2016)/cellulose composites ACS Appl. Mater. Interfaces 8 5653-12332
  • [14] Hinestroza JP(2008)Facile fabrication of multifunctional hybrid silk fabrics with controllable surface wettability and laundering durability Chem. Mater. 20 6840-Q129
  • [15] Parsons GN(2014)Atomic layer deposition of platinum oxide and metallic platinum thin films from Pt(acac) 2 and ozone J. Phys. Chem. C 118 12325-20561
  • [16] Christensen ST(2012)Effect of O ECS J. Solid State Sci. Technol 1 Q123-6809
  • [17] Elam JW(2009) on growth of Pt by atomic layer deposition Electrochem. Solid-State Lett. 12 G34-2387
  • [18] Rabuffetti FA(2011)Plasma-enhanced ALD of platinum with O J. Appl. Phys. 109 084333-78
  • [19] Ma Q(2008), N Electrochem. Solid-State Lett. 11 G5-309
  • [20] Weigand SJ(2013) and NH J. Phys. Chem. C 117 20557-3305