| Literature DB >> 29042537 |
Yating Liu1, Wen Shen1, Qi Li1, Jiangnan Shu1, Lingfeng Gao1, Mingming Ma1, Wei Wang2, Hua Cui3.
Abstract
Most known chemiluminescence (CL) reactions exhibit flash-type light emission. Great efforts have been devoted to the development of CL systems that emit light with high intensity and long-lasting time. However, a long-lasting CL system that can last for hundreds of hours is yet-to-be-demonstrated. Here we show firefly-mimicking intensive and long-lasting CL hydrogels consisting of chitosan, CL reagent N-(4-aminobutyl)-N-ethylisoluminol (ABEI) and catalyst Co2+. The light emission is even visible to naked eyes and lasts for over 150 h when the hydrogels are mixed with H2O2. This is attributed to slow-diffusion-controlled heterogeneous catalysis. Co2+ located at the skeleton of the hydrogels as an active site catalyzes the decomposition of slowly diffusing H2O2, followed by the reaction with ABEI to generate intensive and long-lasting CL. This mimics firefly bioluminescence system in terms of intensity, duration time and catalytic characteristic, which is of potential applications in cold light sources, bioassays, biosensors and biological imaging.Great efforts have been devoted to the development of chemiluminescence systems that emit light with high intensity over long periods of time. Here the authors show, firefly-mimicking intensive and long-lasting chemiluminescence hydrogels consisting of chitosan, N-(4-aminobutyl)-N-ethylisoluminol (ABEI) and catalyst Co2+.Entities:
Year: 2017 PMID: 29042537 PMCID: PMC5645356 DOI: 10.1038/s41467-017-01101-6
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Schematic illustration. a Preparation of ABEI/Co2+/CS hydrogels. b CL emission of ABEI/Co2+/CS hydrogels
Fig. 2Characterization of Co2+/CS hydrogels and ABEI/Co2+/CS hydrogels. a SEM images of freeze-dried Co2+/CS hydrogels with 10-folds dilution. Scale bar is 10 µm. b Frequency dependence of dynamic storage modulus (G') and loss modulus (G") of ABEI/Co2+/CS hydrogels with 1 % strain at 20 °C. Inset in Fig. 2b: optical image of ABEI/Co2+/CS hydrogels
Fig. 3CL performance. a CL kinetic curves for reaction of CS hydrogels, Co2+/CS hydrogels, ABEI/CS hydrogels, ABEI/Co2+/CS hydrogels with H2O2. Inset (i): gel CL imaging of ABEI/Co2+/CS hydrogel-H2O2 (black) and ABEI/CS hydrogel-H2O2 (white). Inset (ii): CL kinetic curves for reaction of Co2+-ABEI-H2O2 system with a fixed photomultiplier tube (PMT) voltage of −450 V. b CL kinetic curves for reaction of ABEI/metal ion/CS hydrogels using different metal ions (Co2+, Cu2+, Pb2+, Ni2+, Hg2+, Cr3+, Ce3+, Cd2+, Fe2+, Fe3+ and blank) with H2O2. Inset: magnification of Cu2+, Pb2+, Ni2+, Hg2+, Cr3+, Ce3+, Cd2+, Fe2+, Fe3+ and blank (without metal ion) in the ABEI/metal ion/CS hydrogels-H2O2. Reaction condition: 100 μl 0.1 M H2O2, 100 μl hydrogels, -550 V PMT
Fig. 4Reaction of ABEI/Co2+/CS hydrogels with H2O2 at different times. a Optical images using a digital camera. H2O2 solution was fully mixed with ABEI/Co2+/CS hydrogels in vial A and H2O2 solution was directly added into ABEI/Co2+/CS hydrogels without agitation in vial B. All the images are coded according to the same intensity scale. b, c CL intensity as a function of time for vial A and B, respectively. For ABEI/Co2+/CS hydrogels, 40 mM 1.5 ml ABEI, 1 mM 0.6 ml Co2+, 15 ml CS dispersed in alkaline solution. Reaction condition: 1 ml 0.1 M H2O2, 1 ml hydrogels