Layer-by-Layer Assembly of Electroactive Dye/LDHs Nanoplatelet Matrix Film for Advanced Dual Electro-optical Sensing Applications

被引:0
作者
Sepehr Lajevardi Esfahani
Shohre Rouhani
Zahra Ranjbar
机构
[1] Institute for Color Science and Technology (ICST),Organic Colorants Department
[2] Institute for Color Science and Technology (ICST),Surface Coatings and Novel Technologies
[3] Institute for Color Science and Technology (CECST),Center of Excellence for Color Science and Technologies
来源
Nanoscale Research Letters | / 15卷
关键词
Solid-state sensor; Layer-by-layer (LbL); Electrochemical sensor; Optical sensor; LDHs; Alizarin reds;
D O I
暂无
中图分类号
学科分类号
摘要
It proved that the most destructive effects of the toxic Al3+ ion on the human nervous system and disease that are involved with this system, such as Alzheimer's. The development of solid-state electrodes is still in its infancy during the sensor-based detection methods for Al3+. Hence, in this study, a novel flexible ITO/PET-based electrochemical solid-state sensor was designed and constructed. Modification of the surface of electrode bedding was done by layer-by-layer (LbL) assembly of Mg–Al LDH. nanoplatelets along with alizarin red S (ARS) in an interconnected matrix film. In the molecular design of sensing base of the electrode, the electroactive organic units (ARS molecules) present in the ITO/PET-layered (ARS/LDHs)n matrix are involved in electrochemical reactions when exposed to the target molecule (Al3+ ion), so the electrochemical changes of the new formed Al-chelated system are detectable. This type of sensor is used for sensitive and selective detection of Al3+. The minimum sheet resistance, morphology and high electrocatalytic activity of the modified matrix film are obtained in the fifth cycle of LbL assembly technique. In this electrochemical sensor, both electrochemical and optical methods were detected with high sensitivity and selectivity of Al3+, so that in a cyclic voltammetry electrochemical method, the lower detection limit of 10.1 nM with a linear range of [0.2–120 μM] was obtained compared to the fluorescence-based optical method.
引用
收藏
相关论文
共 256 条
[1]  
Nagendra B(2015)Polypropylene/layered double hydroxide (L.D.H.) nanocomposites: influence of L.D.H. particle size on the crystallization behaviour of polypropylene ACS Appl Mater Interfaces 7 12399-12410
[2]  
Mohan K(2018)A turn-on fluorescent probe for sensitive detection of sulfide anions and ascorbic acid by using sulfanilic acid and glutathione functionalized graphene quantum dots Sens Actuators B Chem 256 48-54
[3]  
Gowd EB(2016)Corrosion inhibitor release from Zn-Al-[PO43-]-[CO32-] layered double hydroxide nanoparticles Prog Color Color Coat 9 233-248
[4]  
Weidan N(2018)One-step electrodeposition-assisted layer-by-layer assembly of gold nanoparticles and reduced graphene oxide and its self-healing three-dimensional nanohybrid for an ultrasensitive D.N.A. sensor Nanoscale 10 1196-1206
[5]  
Zhengyi Q(2017)Self-Assembling of electrochemical glucose biosensor with bacteriostatic materials via layer-by-layer method J Electrochem Soc 164 189-192
[6]  
Xueqian C(2018)Flexible hydrogen peroxide sensors based on platinum modified free-standing reduced graphene oxide paper Appl Sci 8 848-860
[7]  
Xingguang S(2014)An effective methanol-blocking membrane modified with graphene oxide nanosheets for passive direct methanol fuel cells Electrochim Acta 117 393-397
[8]  
Alibakhshi E(2010)Layer-by-layer assembly of bi-protein/layered double hydroxide ultrathin film and its electrocatalytic behaviour for catechol Biosens Bioelectron 26 549-554
[9]  
Ghasemi E(2008)Direct electrochemistry and electrocatalysis based on a film of horseradish peroxidase intercalated into Ni–Al layered double hydroxide nanosheets Biosens Bioelectron 24 356-361
[10]  
Mahdavian M(2017)Tailoring Hybrid layered double hydroxides for the development of innovative applications Adv Funct Mater 28 1703868-942