JACS Au. 2026 Jul 19;6(8):4353-4366. doi: 10.1021/jacsau.6c00663. eCollection 2026 Aug 24.
ABSTRACT
Confined spaces at the nanoscale pores, channels, and cavities that alter molecular affinities and restrict molecular motion, orientation and local distribution are emerging as a powerful design principle for next-generation materials. By tailoring the structure and functionality of these confined spaces, it is possible to control reactivity, transport, and material properties in ways that are unattainable in bulk systems. This Perspective highlights nanoconfinement as a unifying principle for programming function and addressing major societal challenges in energy, water, health and sustainability. Drawing inspiration from nature’s remarkable precision in bio-molecular control, we showcase six representative areas in which confined spaces are transforming technology: chromatography, catalysis, nanofluidics, bioinspired pore design, confinement-programmed material states, and data-driven material development. Together, these examples illustrate the power of nanoconfinement as an enabling unifying concept. By integrating orthogonal functionalization strategies, advanced characterization, modeling, and digitalization, programmable nanoconfinement will become a versatile framework for engineering materials and processes that meet the demands of a sustainable and technologically advanced society.
PMID:42656896 | PMC:PMC13508101 | DOI:10.1021/jacsau.6c00663