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用于高分辨率热纳米压印光刻的全氟聚醚(PFPE)中间模具。

Perfluoropolyether (PFPE) Intermediate Molds for High-Resolution Thermal Nanoimprint Lithography.

作者信息

Masciullo Cecilia, Sonato Agnese, Romanato Filippo, Cecchini Marco

机构信息

National Enterprise for nanoScience and nanoTechnology (NEST), Scuola Normale Superiore and Istituto Nanoscienze-CNR, Piazza San Silvestro 12, 56127 Pisa, Italy.

Consiglio Nazionale delle Ricerche-Istituto Officina dei Materiali (CNR-IOM), Area Science Park, S.S. 14, km 163.5, 34149 Basovizza (TS), Italy.

出版信息

Nanomaterials (Basel). 2018 Aug 10;8(8):609. doi: 10.3390/nano8080609.

Abstract

Among soft lithography techniques, Thermal Nanoimprint Lithography (NIL) is a high-throughput and low-cost process that can be applied to a broad range of thermoplastic materials. By simply applying the appropriate pressure and temperature combination, it is possible to transfer a pattern from a mold surface to the chosen material. Usually, high-resolution and large-area NIL molds are difficult to fabricate and expensive. Furthermore, they are typically made of silicon or other hard materials such as nickel or quartz for preserving their functionality. Nonetheless, after a large number of imprinting cycles, they undergo degradation and become unusable. In this paper, we introduce and characterize an innovative two-step NIL process based on the use of a perfluoropolyether (PFPE) intermediate mold to replicate sub-100 nm features from a silicon mold to the final thermoplastic material. We compare PFPE elastomeric molds with molds made of the standard polydimethylsiloxane (PDMS) elastomer, which demonstrates better resolution and fidelity of the replica process. By using PFPE intermediate molds, the nanostructured masters are preserved and the throughput of the process is significantly enhanced.

摘要

在软光刻技术中,热纳米压印光刻(NIL)是一种高通量且低成本的工艺,可应用于多种热塑性材料。通过简单地施加适当的压力和温度组合,就能够将图案从模具表面转移到所选材料上。通常,高分辨率和大面积的NIL模具难以制造且成本高昂。此外,它们通常由硅或其他硬质材料(如镍或石英)制成,以保持其功能。然而,经过大量的压印循环后,它们会发生降解并变得无法使用。在本文中,我们介绍并表征了一种创新的两步NIL工艺,该工艺基于使用全氟聚醚(PFPE)中间模具,将小于100纳米的特征从硅模具复制到最终的热塑性材料上。我们将PFPE弹性体模具与由标准聚二甲基硅氧烷(PDMS)弹性体制成的模具进行了比较,结果表明PFPE弹性体模具在复制过程中具有更好的分辨率和保真度。通过使用PFPE中间模具,纳米结构母版得以保存,并且该工艺的通量显著提高。

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