Fluorescent Nanowires from Dual‐State Emitting Fluorophores Directed by Molecular Motors and Aggregation‐Induced Emission: Produce Quantized Light Spectrum

Author:

Chettri Prerna12,Singhania Anup12,Kalita Sudeshna12,Nakao Hidenobu3,Bora Bharati12,Saikia Ponkaj1,Dutta Sanghamitra1,Bandyopadhyay Anirban4,Ghosh Subrata12ORCID

Affiliation:

1. Natural Product Chemistry Group Chemical Sciences & Technology Division CSIR‐North East Institute of Science & Technology Jorhat Assam 785006 India

2. Academy of Scientific and Innovative Research (AcSIR) Ghaziabad 201002 India

3. Hydrogen Related Materials Group Hydrogen Technology Materials Field Research Center for Energy and Environmental Materials (GREEN) National Institute for Materials Science (NIMS) 1‐1 Namiki Tsukuba Ibaraki 3050044 Japan

4. International Center for Materials and Nanoarchitectronics (MANA) and Research Center for Advanced Measurement and Characterization (RCAMC) National Institute for Materials Science (NIMS) 1‐2‐1 Sengen Tsukuba Ibaraki 3050047 Japan

Abstract

AbstractLuminescent materials require systems that exhibit both dual‐state emission (DSE) and aggregation‐induced emission (AIE) to overcome the limitation of aggregation‐caused quenching (ACQ). Herein, a molecular assembler capable of crafting nanowires that exhibit programmable fluorescence across a broad spectrum of colors in a precisely quantized manner is reported. Because it is a starburst dendritic box made of PAMAM dendrimer (P), controller (C) molecules, and motor (M) molecules, the assembler is called PCM. Here, Nile red is chosen as C and placed into the hollow core of the dendrimer; a double ratchet motor (DRM) is chosen as M and is connected to the N‐terminals of the PAMAM dendrimer. While aqueous dispersed PCM assemblers have broad fluorescence bands beyond 300 nm, their crafted nanowires produce quantized cyan‐green, yellow, and orange‐red light emission in the spectra. These PCM assemblers are shown to hold long‐term memory, rapid switching, and energy harvesting by modulating photonic bandgaps, causing a longer redshift in the solid phase. The DSE of PCM can yield versatile photonics applications like bioimaging and energy harvesting. As PCM nanowires can modulate photonic bandgaps to cause a longer redshift, PCM fluorophores hold promise for drug delivery and cell separation like infrared‐sensitive operations.

Funder

Council of Scientific and Industrial Research, India

U.S. Air Force

Publisher

Wiley

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