纳米尺度
材料科学
纳米技术
超晶格
纳米光刻
结晶
自组装
DNA折纸
表征(材料科学)
纳米结构
显微镜
纳米光子学
纳米晶
纳米线
纳米制造
退火(玻璃)
DNA纳米技术
光子学
分辨率(逻辑)
散射
超材料
纳米生物技术
作者
Aaron Michelson,Jason S. Kahn,Brian Minevich,Dan Mckeen,Anish Kumar Nayak,Vishnu Dharmaraj,Tejus Shastry,Eric Shen,Tate Saraglino,Sanat Kumar,Oleg Gang
摘要
ABSTRACT The directed self‐assembly of nanoscale materials into ordered superlattices presents a powerful strategy for creating next‐generation materials with programmable mechanical, optical, and photonic properties. Deoxyribonucleic acid (DNA) origami has emerged as a versatile scaffold for encoding nanoscale geometry and guiding the crystallization of complex 3D architectures. However, a systematic understanding of the parameters that govern the efficiency and quality of superlattice formation remains limited. In this study, we utilize octahedral DNA nanoscale frames as a model system to investigate the relative influence of key factors, including buffer composition, ionic strength, frame concentration, and thermal annealing protocols, on the size, order, and reproducibility of the resulting superlattices. Our findings provide a quantitative framework to rationally optimize DNA‐based assembly pathways. Structural characterization via small‐angle x‐ray scattering (SAXS), scanning electron microscopy (SEM), and optical microscopy validates the quality and fidelity of the assembled lattices. Moreover, by templating these DNA frameworks into inorganic replicas, we establish general design principles that extend beyond biomolecular systems, providing a foundation for the synthesis of programmable materials in broader nanofabrication contexts.
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