4.8 Article

Wafer-Scale Nanopatterning and Translation into High-Performance Piezoelectric Nanowires

Journal

NANO LETTERS
Volume 10, Issue 11, Pages 4595-4599

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nl102619c

Keywords

Nanomanufacturing; energy conversion; piezoelectric nanowires; laser annealing

Funding

  1. NSF MRSEC via the Princeton Center for Complex Materials [DMR-0819860]
  2. Broad Foundations
  3. Intelligence Community [2008-1218103-000]
  4. Defense Advanced Research Projects Agency [N66001-10-1-2012]
  5. National Science Foundation [NSF CMMI-1036055]
  6. Direct For Mathematical & Physical Scien
  7. Division Of Materials Research [819860] Funding Source: National Science Foundation

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The development of a facile method for fabricating one-dimensional, precisely positioned nanostructures over large areas offers exciting opportunities in fundamental research and innovative applications. Large-scale nanofabrication methods have been restricted in accessibility due to their complexity and cost. Likewise, bottom-up synthesis of nanowires has been limited in methods to assemble these structures at precisely defined locations. Nanomaterials such as PbZrxTi1-xO3 (PZT) nanowires (NWs)-which may be useful for nonvolatile memory storage (FeRAM), nanoactuation, and nanoscale power generation are difficult to synthesize without suffering from polycrystallinity or poor stoichiometric control. Here, we report a novel fabrication method which requires only low-resolution photolithography and electrochemical etching to generate ultrasmooth NWs over wafer scales. These nanostructures are subsequently used as patterning templates to generate PZT nanowires with the highest reported piezoelectric performance Idea 145 pm/V). The combined large-scale nanopatterning with hierarchical assembly of functional nanomaterials could yield breakthroughs in areas ranging from nanodevice arrays to nanodevice powering.

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