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Electron beam induced local crystallization of HfO2 nanopores for biosensing applications

机译:电子束诱导当地的结晶HfO2纳米孔生物传感

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We report the development of single, locally crystallized nanopores in HfO2 membranes for biosensing applications. HfO2 is chosen for its isoelectric point of 7.0, mechanical and chemical stability in solution, and for its potential as a high-k material for nanopore ionic field effect transistor applications. The HfO2 membrane is deposited on a graphene layer suspended over a 300 nm FIB hole, where graphene is used as the mechanical support. Exposure of the membrane to a focused electron beam causes crystallization in the vicinity of the nanopore during pore formation. We investigate the effects of crystallization on the electrical and surface properties of HfO2 films. Our surface analysis of HfO2 reveals improved hydrophilicity of crystallized HfO2, a notable advantage over the hydrophobicity of as-deposited HfO2. We also demonstrate detection of dsDNA translocation through HfO2 nanopores under various applied bias levels. In addition, our device architecture also presents a promising first step toward the realization of high-K HfO2 nanopore transistors.
机译:我们报告单一的发展,本地在HfO2薄膜结晶纳米孔生物传感。等电点为7.0,机械和化学稳定的解决方案,其潜在的作为high-k材料纳米孔离子场效应晶体管的应用程序。沉积在石墨烯层停职300海里FIB洞,石墨烯用作机械的支持。聚焦电子束产生结晶在孔附近的纳米孔形成。电气和表面的结晶HfO2薄膜的性质。HfO2揭示了亲水性的提高结晶HfO2,一个显著的优势疏水性的as-deposited HfO2。演示dsDNA易位检测通过HfO2纳米孔在不同应用的偏见的水平。提出了一种有前途的第一步实现high-K HfO2纳米孔晶体管。

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