Fabrication of 3-methoxyphenol sensor based on Fe3O4 decorated carbon nanotube nanocomposites for environmental safety: Real sample analyses

Iron oxide ornamented carbon nanotube nanocomposites (Fe3O4.CNT NCs) were prepared by a wet-chemical process in basic means. The optical, morphological, and structural characterizations of Fe3O4.CNT NCs were performed using FTIR, UV/Vis., FESEM, TEM; XEDS, XPS, and XRD respectively. Flat GCE had been fabricated with a thin-layer of NCs using a coating binding agent. It was performed for the chemical sensor development by a dependable I-V technique. Among all interfering analytes, 3-methoxyphenol (3-MP) was selective towards the fabricated sensor. Increased electrochemical performances for example elevated sensitivity, linear dynamic range (LDR) and continuing steadiness towards selective 3-MP had been observed with chemical sensor. The calibration graph found linear (R2 = 0.9340) in a wide range of 3-MP concentration (90.0 pM ~ 90.0 mM). The limit of detection and sensitivity were considered as 1.0 pM and 9×10−4 μAμM-1cm-2 respectively. The prepared of Fe3O4.CNT NCs by a wet-chemical progression is an interesting route for the development of hazardous phenolic sensor based on nanocomposite materials. It is also recommended that 3-MP sensor is exhibited a promising performances based on Fe3O4.CNT NCs by a facile I-V method for the significant applications of toxic chemicals for the safety of environmental and health-care fields.


Introduction
The protection is a key apprehension in viewpoint of atmosphere and health that is a great issue to examine using sensors intended for the identification & recognition of toxic materials through an established practice. Semiconductor nanostructure material is very proficient and perceptive due to their high active surface area and different spherical morphologies to volume ratio in comparison with typical diameter from nano to micro ranges. In recent times, the nanostructure of metal oxide is an immense interest having their fascinating criteria such as fabrication of chemical sensor, dynamic surface area, elevated porosity, permeability, quantum confinement consequence, and stability . Sensor based metal oxide conjugated carbon a1111111111 a1111111111 a1111111111 a1111111111 a1111111111 composites are extensively used for the monitoring of air-water contamination, chemical process and poisonous constituents in the environment [22,23]. Recognition and partition of contaminated resources from industrial waste water is one of the key issues in the biological and environmental field. Different methods reported for the isolation and removing of carcinogenic materials from the industrial waste water but a few issues are still remaining troubled that are removing of toxic agents in efficiently and re-usability of the NCs materials including their preparation at a facile and low cost. The mesoporous character of the NCs material allows a simplistic recycling devoid of foremost degradation of sensor effectiveness and potentiality. An excellent absorption and adsorption ability of the hybrid NCs, makes it's an appropriate sensor for the identification and removing of marked harmful agents from industrial and environmental wastes. Substituted and un-substituted phenols are common bi-products of industrial process having high toxicity properties. They are frequent contaminants in food, fresh and waste water [24]. 3-MP is an effective toxic element to environment and health. Hence it is very important to expand a suitable analytical process which is dependable, economical and efficient for the accurate quantification and sensitive finding of 3-MP. Various sensing techniques have been reported in the previous study to detect phenolic compounds such as electrochemical methods, HPLC and spectrometry. Among several detection methods, the electrochemical current-voltage (I-V) technique is a cheap, portable and easy to implement. Therefore, based on different nanostructure materials, semiconductor undoped or doped nanomaterials (NMs), transition metal oxides, electrocatalytic moieties, several chemically modified electrodes have been developed for the detection of 3-MP [25].
Diverse classes of nanoparticles (NPs), metallic or polymeric colloids used to improve the patient compliance and therapeutic efficiency of applicable medicines. Ferro-fluids are stable dispersions in water phase of magnetic iron-oxide NPs which have been studied in biomedical sciences as proficient device in vitro diagnosis, cell separation, immunoassays and nucleic acid concentration [26]. In chemically, iron oxide NPs have been used in NO reduction [27], adsorbents for heavy metals [28], pigments in cosmetic powders [29], anodes in lithium ion-batteries [30], detection of hydrogen peroxide [31], polymer coated of supra-magnetic NPs [32], application in magnetic resonance imaging [33], biomedical applications [34], imaging agents [35], photo-catalysis [36], removing of inorganic and organic pollutants [37], glycerol hydrogenolysis [38], hydrogenation of nitrobenzene [39], application in high-performance supercapasitor [40], catalytic oxidation [41], water treatment [42], separation of acid dye [43], antibody functionalization [44], biosensor applications [45], hybridization of nanotube [46], oil spill removing [47] and bio-distribution studies [48]. In this approach, Fe 3 O 4 .CNT NCs prepared by a simple wet-chemical process in alkaline phase, which revealed a steady growth development of NMs onto CNT surfaces and significantly executed for their potential applications. Fe 3 O 4 .CNT NCs have been used to fabricate a simple and efficient chemical sensor and assessed for the sensing performance selectively considering 3-MP in phosphate buffer (PB) at room temperature. To the best of our knowledge, this is the initial report for detection of 3-MP with prepared Fe 3 O 4 .CNT NCs onto GCE using an easy, suitable, and dependable I-V technique with short response time.
(Hx), 2-nitrophenol (2-NP), sodium hydroxide (NaOH), tetrahydrofuran (THF), tolune-4-sulfonic acid hydrazide and xanthine (Xn), purchased from Sigma-Aldrich Company and used as received. FT-IR and UV/V spectra of the dried brown Fe 3 O 4 NPs, and Fe 3 O 4 .CNT NCs were performed using Thermo scientific NICOLET iS50 FTIR spectrometer (Madision, WI, USA) and 300 UV/Visible spectrophotometer (Thermo scientific) respectively. The XPS measurements were examined to calculate the binding energy (eV) of C, Fe and O on a K-α spectrometer (Thermo scientific, K-α 1066) with an excitation radiation source (A1 Kα, Beam spot size = 300.0 μm; pass energy = 200.0 eV; pressure~10 −8 torr). The morphology and particle size of CNT, Fe 3 O 4 NPs, and Fe 3 O 4 .CNT NCs were analyzed by FESEM and TEM (JEOL, JSM-7600F, Japan). XRD experiment was also carried out under ambient conditions to detect the crystalline pattern of Fe 3 O 4 .CNT NCs. I-V was performed [49,50]   After that, the fabricated electrode was kept at R. T. (3 h) for uniform film formation with completed drying. The fabricated GCE and platinum (Pt) were used as a working and counter electrode respectively in order to find out the I-V signals.

Evaluation of optical and structural properties
The optical property is one of the important characteristics for the assessment of photo-catalytic activity of the brown grown Fe 3 O 4 NPs and Fe 3 O 4 .CNT NCs. Based on UV/Vis. theory, the outer electrons of the atom absorb radiant energy and then shifted to the higher-energy levels. The spectrum including band-gap energy of the metal oxide can be achieved due to the optical absorption. The UV/Vis. spectra of the Fe 3 O 4 NPs and Fe 3 O 4 .CNT NCs were recorded in the visible range (200~800 nm). The absorption band at around 307.0 and 320.5 nm were found respectively (Fig 2A-2C). Based on the maximum level of band absorption, the bandgap energies of the Fe 3 O 4 NPs and Fe 3 O 4 .CNT NCs were calculated using Tauc's equation (vi). Here, α = Absorption coefficient, A = Constant related to the effective mass of the electrons, r = 0.5 (Direct transition), E g = Band-gap energy, h = Plank's constant, v = Frequency. Following the direct band-gap rule (αhv) 2 = A (hv-E g ), curve of (αhv) 2 vs hv was plotted and then extrapolated to the axis. From the extrapolated curve, the band-gap energies for Fe 3 O 4 NPs and Fe 3 O 4 .CNT NCs were found as 2.5 and 2.3 eV correspondingly (Fig 1B-1D) [51][52][53].
The CNT, Fe 3 O 4 NPs and Fe 3 O 4 .CNTs NCs were also examined in perception of atomic and molecular vibrations to recognize the functional nature of the NCs using FTIR, and  3B) were observed. All the pragmatic peaks in the spectra were assigned by using the JCPDS file (019-0629). The observed peak at 25.5 (002) was denoted for carbon of CNT and NCs. The strongest peak indicates the crystalline pattern and purity of the NCs. From the XRD analysis, it was suggested that a big amount of crystalline Fe 3 O 4 was present in the synthesized iron oxide decorated CNT NCs [55].

Morphological and elemental characteristics
FESEM is one of the well-recognized processes to observe the morphology of the materials. The morphology and elemental analysis of the prepared brown Fe 3 O 4 .CNT NCs were measured using FESEM coupled-XEDS respectively. The typical shapes of CNT, Fe 3 O 4 NPs, and brown Fe 3 O 4 .CNT NCs had been recorded from low to high magnified images (Fig 4A-4D). According to the magnified images, Fe 3 O 4 was aggregated and decorated with a bright contrast along with well-dispersed onto the CNT surfaces. The conductance of CNT may be increased with the addition of There are no other peaks related with impurities were found in the spectra which indicated that the NCs are composed of C, O, and Fe only (Fig 5A-5D).

Determination of binding energy
XPS is a quantitative spectroscopic system which can be used to indicate the chemical nature of the elements present in the NCs. XPS spectra may be recorded by irradiating of an X-ray  Table 1 and Fig 6A-6D [56].

TEM analysis
Additional morphological evaluation of Fe 3 O 4 .CNT nanocomposites was investigated by TEM analysis. It is revealed that the aggregated spherical-shaped Fe 3 O 4 nanoparticle decorated onto CNT morphology, which is presented in Fig 7A and 7B. The TEM images (Fig 7A and 7B of

Detection of 3-methoxyphenol by Fe 3 O 4 .CNT NCs
Enhancement of the fabricated electrode with NCs is the initial stage of using as a chemical sensor. The significant application of Fe 3 O 4 .CNT NCs is assembled onto GCE as a chemical sensor, which carried out for the detecting and measuring of target agent, 3-MP in PB. The Fe 3 O 4 .CNT NCs/GCE sensor have more advantages for example chemically inert, safe, electro-chemical activity, easy to fabricate, non-toxic, simple to assemble and stable in air. According to the I-V method, the current responses of Fe 3 O 4 .CNT NCs/GCE were considerably changed during 3-MP adsorption. A significant amplification in the current response with applied potential was noticeably confirmed having the holding time of electrometer was 1.0  The potential application of Fe 3 O 4 .CNT NCs assembled onto an electrode as a chemical sensor has been engaged for the identification of compounds that are biological and environmentally hazardous. The current responses (potential range: 0~+1.5 V) for the bare, GCE with nafion, and coated with Fe 3 O 4 .CNT NCs on the working electrode surface were presented in Fig 9A. The differences of the current responses between bare and coated GCE occurred due to the current signals were enhanced by coated electrode in compared with bare GCE. The current signal without (red-dotted) and with (black dotted) analyte were recorded (Fig 9B). A significant improvement of current responses occurred in case of the modified Fe 3 O 4 .CNT electrode with 3-MP which gives a higher surface area with better coverage in absorption and adsorption potentiality onto the porous NCs surfaces of the target compound (3-MP). The I-V responses of the 3-MP with different concentration (90 pM~90 mM) towards Fe 3 O 4 .CNT NCs modified electrode were recorded which signified that the changes of current of the fabricated electrode was a function of 3-MP concentration under normal condition and it was also revealed that the current responses increased regularly from lower to higher concentration of the target molecule (Fig 9C). A broad range of the analyte concentrations were measured from the lower to higher potential (0.0~1.5 V) to examination of the possible analytical limit. The linear calibration curve at 0.8 V were plotted from the various concentrations of 3-MP (90 pM~90 mM). The LDR (90 pM~90 nM), regression co-efficient (R 2 = 0.9340), sensitivity 3-methoxyphenol sensor development with Fe 3 O 4 -CNT nanocomposites for environmental safety (9 × 10 −4 μAμM -1 cm -2 ), and LOD (1.0 pM) at signal to noise ratio~3 were calculated from the calibration curve (Fig 9D). Response time (r. t. = 11 s) of the electrode was calculated from the practical concentration variation graph (Fig 10A).
The resistance value of the Fe 3 O 4 .CNT NCs modified GCE chemical sensor can be decreased with increasing active surface area which is an important property of the growth NCs particles [57]. These reactions could be occurred in bulk-system/air-liquid interface/ neighboring atmosphere owing to the small carrier concentration, which increased the resistance during increasing the electrical properties. For enhancement of the oxygen adsorption, the sensitivity/conductivity of 3-MP towards Fe 3 O 4 .CNT NCs could be ascribed having higher-oxygen lacking conducts. Larger amount of oxygen adsorbed on the Fe 3 O 4 -doped NCs sensor surface, higher would be the oxidizing potentiality and faster would be the oxidation of 3-MP and higher would be the resultant current. The activity of 3-MP would have been extremely big as contrast to other toxic chemical with the surface under indistinguishable conditions [58,59]. In two-electrode system, I-V characteristic of the Fe 3 O 4 .CNT NCs coated GCE is activated as a function of 3-MP concentration at room conditions, where improved current response was observed. As obtained, the current response of the Fe 3 O 4 .CNT NCs/ GCE film was increased with the increasing concentration of 3-MP; however similar phenomena for toxic chemical detection have also been reported earlier [60][61][62]. At a low concentration of 3-MP in liquid medium, there is a smaller surface coverage of 3-MP molecules on Fe 3 O 4 .CNT NCs/GCE film and hence the surface reaction proceeds steadily. By increasing the 3-MP concentration, the surface reaction is increased significantly (gradually increased the response as well) owing to large surface area contacted with 3-MP molecules. CNT NCs fabricated electrode and therefore it was clearly reported that the sensor was most selective to 3-MP compared with other chemicals (Fig 10B). The sensitivity of the Fe 3 O 4 .CNT NCs coated electrode sensor was performed up to two weeks for the examination of the reproducible and storage capabilities. It was recognized that the I-V responses were not significantly changes after washing of each experiment of the fabricated Fe 3 O 4 .CNT NCs electrode (Fig 10C).
The sensitivity remained almost equal as the initial response up to two weeks and after that the responses of the fabricated electrode become decreased gradually. A series of six successive measurements of 3-MP solution (900 nM) yielded good reproducible responses with the Fe 3 O 4 .CNT NCs electrode at different conditions. A control experiment was also performed at 3-MP concentration (900 mM) with different fabricated electrodes and a remarkable increased of current response was found for the Fe 3 O 4 .CNT NCs compared with Fe 3 O 4 NPs (Fig 10D). The responses of NCs sensor were determined with respect to storage time for measurement of long term storage capacity. The storage stability measurement of the Fe 3 O 4 .CNT NCs electrode sensor was conducted under normal conditions and the sensitivity remained almost 90% as the initial responses for several days. It was clearly denoted that the fabricated sensor may be used without any significant degradation of sensitivity up to several weeks. The sensor performances using different electrochemical approach toward phenolic derivatives have been concluded [24,49,[63][64][65] in Table 2.

Real sample analysis
On the subject of authentication of the legitimacy of I-V system, the Fe 3 O 4 .CNT NCs/GCE used to detect the 3-MP in different original samples. A standard addition method used to approximate the concentration of 3-MP in real samples that were collected from diverse sources. A set amount (~25.0 μL) of every original analyte mixed and examined in PB (10.0 mL) using fabricated Fe 3 O 4 .CNT NCs/GCE. The obtained results concerning 3-MP finding are presented in Table 3, and actually established that the anticipated Fe 3 O 4 .CNT NCs/GCE advancement is acceptable, dependable, and proper for analyzing real samples using I-V design.