Electrochemical Determination of 4-Bromophenoxyacetic Acid Based on CeO2/eGr Composite

The determination of plant growth regulators is of great importance for the quality monitoring of crops. In this work, 4-bromophenoxyacetic acid (4-BPA), one of the phenoxyacetic acids, was detected via the electrochemical method for the first time. A CeO2-decorated electrochemical exfoliated graphene (eGr) composite (CeO2/eGr) was constructed as the sensor for sensitive detection of 4-BPA due to the synergistic effect of the excellent catalytic active sites of CeO2 and good electron transference of the eGr. The developed CeO2/eGr sensor displayed a good linearity in a wide range from 0.3 to 150 μmol/L and the lowest detection limit of 0.06 μmol/L for 4-BPA detection. Electrochemical oxidation of 4-BPA follows a mix-controlled process on the CeO2/eGr electrode, which involves 2e in the transference process. This developed CeO2/eGr sensor has excellent repeatability with a relative standard deviation (RSD) of 2.35% in 10 continuous measurements. Moreover, the practical application of the sensor for 4-BPA detection in apple juice has recoveries in the range of 90–108%. This proposed CeO2/eGr sensor has great potential for detecting plant growth regulators in the agricultural industry.


Introduction
Plant growth regulators (PGRs) are widely used to promote a crop's productivity and quality [1,2], control crop type [3], resist biotic and abiotic stress [4], regulate differentiation of cells, control weeds [5], and for phytoremediation [6]. 4-bromophenoxyacetic acid (4-BPA) is a PGR that can control weeds, accelerate plant growth, and enhance the fruit setting rate. However, inappropriate usage of 4-BPA will cause malformations and affect the quality of the crop. Furthermore, accumulation in the crop can be a detriment to other plants, animals, and to human health. Therefore, it is of great necessity to develop convenient, sensitive, and reliable analytical methods for 4-BPA determination. Unfortunately, to the authors' knowledge, only Sutcharitchan [7] has developed a liquid chromatographytandem mass spectrometry (LC-MS) method for 4-BPA determination in Chinese herbs.
4-BPA is a phenoxyacetic acid, and a variety of analytical methods for phenoxyacetic acid detection have been developed, including capillary electrophoresis with laser-induced fluorescence [8], ultra-high liquid chromatography-mass spectrometry [9], headspace gas chromatography high-performance liquid chromatography [10] and electrochemical methods [11][12][13][14][15]. Compared to these methods, electrochemical methods have the advantage of high sensitivity, low cost, portability, and simple operation [16,17]. The direct interaction between the electrode surface and analyte can reduce the lowest limitation and improve the detection range, which has the potential to establish a rapid on-site inspection

Reagents and Materials
All reagents used in the experiments are analytical reagent grade and without any treatment. Graphite sheets were purchased from the local electronic market. Ce(NO 3 ) 3 ·6H 2 O, 4-BPA, indole 3-acetic acid, naphthalene acetic acid and 6-benzylaminopurine were purchased from Macklin biochemical Technology Co., Ltd. (Shanghai, China). A solution of 0.1 M 4-BPA was prepared by dissolving a suitable amount of 4-BPA in alcohol and diluting the mixture to 10 mL, then the solution was stored in a refrigerator at 4 • C. Phosphate buffer solution (PBS) was used as a supporting electrolyte by combining a stock solution of 0.1 M KH 2 PO 4 (Aladdin Reagent Co., Ltd., Shanghai, China) and 0.1 M NaH 2 PO 4 (Aladdin Reagent Co., Ltd., Shanghai, China), then 0.1 M H 3 PO 4 (Aladdin Reagent Co., Ltd., Shanghai, China) and 0.1 M NaOH (Sinopharm Group Chemical Reagent Co., Ltd., Shanghai, China) were, respectively, used to adjust the pH to the desired value.

Preparation of CeO 2 , eGr, and eGr/CeO 2 Composites
CeO 2 nanocubes were prepared using the hydrothermal method. Firstly, 0.6948 g Ce(NO 3 ) 3 ·6H 2 O and 0.0224 g hexamethylenetetramine (HMT) was dissolved in 40 mL distilled water and 40 mL ethanol. The resulting solution was vigorously stirred for 20 min at room temperature, then it was transferred into a 100 mL Teflon-lined stainless-steel autoclave, and hydrothermally heated at 180 • C for 20 h. After that, the product was collected by centrifuging, and alternatively washed with distilled water and ethanol to a neutral pH, and then dried in an oven at 80 • C for 12 h. Finally, the obtained yellow powder was calcined at 400 • C for 5 h.
For eGr preparation, a two-electrode cell was used including graphite foil as an anode, a platinum net as a cathode, and 0.1 M (NH 4 ) 2 SO 4 as a supporting electrolyte, whereas the eGr was obtained with the aid of SO 4 2− intercalation and oxidization to produce sulfur dioxide and oxygen gases, then the product was centrifuged, filtrated and dried overnight.
Next, 9 mg CeO 2 and/or 9 mg eGr were dispersed in 9 mL N, N -dimethylformamide (DMF) solution with vigorous stirring and then ultra-sonicating for 2 h to obtain the CeO 2 , eGr, and CeO 2 /eGr suspensions. The glassy carbon electrodes (GCEs) were polished to a mirror-like surface with 0.3 and 0.5 µm Al 2 O 3 slurries on chamois leather, then alternately rinsing with distilled water/ethanol (1:1, v/v) solution and double distilled water for 3 min. Finally, CeO 2 , eGr, and CeO 2 /eGr suspensions were, respectively, drop-coated on the mirror-like surface of GCEs to obtain CeO 2 /GCE, eGr/GCE, and CeO 2 /eGr/GCE electrodes.
Cyclic voltammetry (CV), linear sweep voltammetry (LSV), and differential pulse voltammetry (DPV) measurements were performed on a CHI 660E electrochemical workstation (CH Instruments ins., Shanghai, China) and a classic three-electrode system. CVs were carried out with the potential range from 0.8 to 1.5 V at a scan rate of 0.1 V s −1 . LSVs were carried out with the potential range from 0.9 to 1.6 V at a scan rate of 0.1 V s −1 . DPVs were carried out from 0.8 to 1.5 V with parameters of 0.05 V amplitude, 0.06 s pulse width, 0.02 s sampling width, 0.5 s pulse period and 30 s rest time. A glassy carbon electrode (GCE, diameter 3 mm) or modified GCE as the working electrode, a platinum wire served as a counter electrode and Ag/AgCl was used as the reference electrode.

Sample Pretreatment
The purchased apple was squeezed into juice (120 g) and the fresh apple juice was mixed with distilled water and sonicated for 20 min (at room temperature), then centrifuged for 5 min with 10,000 r/min to obtain the supernatants. Supernatants were collected for further quantification of 4-BPA.

Morphology and Phase Structure Characterization
The morphology of the synthesized CeO 2 was observed by SEM, which presents a nano-cubic structure, and agglomerated together due to the nanosize effect ( Figure 1a). The diffraction rings in the selected area electron diffraction (SAED) suggest the as-synthesized CeO 2 is polycrystalline and mainly exists in (111), (200), (220), and (311) crystallite planes ( Figure 1b). From HRTEM (Figure 1c), there is a main lattice space distance of 0.314 nm which belongs to (111) crystallite plane of CeO 2 . For the eGr sample, the TEM image indicates the prepared eGr displays a layered structure (Figure 1d), and the SAED indicates that the eGr mainly presents (002), and (004) crystallite planes (Figure 1e), the existed lattice space distance of 0.34 nm matches well with the theoretical value of graphene (002) crystallite plane ( Figure 1f); it verifies the high quality of the prepared eGr. The CeO 2 /eGr nanocomposite used here was 1:1 in a weight ratio (1:1 wt.). Figure 1g shows that CeO 2 is uniformly loaded on the surface of eGr and forms on the selected area ( Figure 1h); the corresponding elemental mapping illustrates that the elements of C, O and Ce exist in the CeO 2 /eGr nanocomposite (Figure 1i-k).
fuged for 5 min with 10,000 r/min to obtain the supernatants. Supernatants were collected for further quantification of 4-BPA.

Morphology and Phase Structure Characterization
The morphology of the synthesized CeO2 was observed by SEM, which presents a nano-cubic structure, and agglomerated together due to the nanosize effect ( Figure 1a). The diffraction rings in the selected area electron diffraction (SAED) suggest the as-synthesized CeO2 is polycrystalline and mainly exists in (111), (200), (220), and (311) crystallite planes (Figure 1b). From HRTEM (Figure 1c), there is a main lattice space distance of 0.314 nm which belongs to (111) crystallite plane of CeO2. For the eGr sample, the TEM image indicates the prepared eGr displays a layered structure (Figure 1d), and the SAED indicates that the eGr mainly presents (002), and (004) crystallite planes (Figure 1e), the existed lattice space distance of 0.34 nm matches well with the theoretical value of graphene (002) crystallite plane ( Figure 1f); it verifies the high quality of the prepared eGr. The CeO2/eGr nanocomposite used here was 1:1 in a weight ratio (1:1 wt.). Figure 1g shows that CeO2 is uniformly loaded on the surface of eGr and forms on the selected area ( Figure 1h); the corresponding elemental mapping illustrates that the elements of C, O and Ce exist in the CeO2/eGr nanocomposite (Figure 1i   The crystallite structure and composition of CeO 2 , eGr and CeO 2 /eGr composite (1:1 wt.) were evaluated by Raman spectra, XRD and XPS. In Raman spectra of Figure 2a, it shows a characteristic peak located at 461 cm −1 for the CeO 2 sample, which stems from the symmetrical stretching of Ce-O vibrational and originates from the F2g vibrational mode of the CeO 2 phase [33]. For eGr, the peaks at 1356, 1580 and 2710 cm −1 were assigned to D, G and 2G bands of graphene, respectively [34]. The D band at~1356 cm −1 is derived from the defects and structural disorder in the sp 2 -carbon nanomaterials. The G band at 1580 cm −1 is related to the in-plane vibrations of the 2D hexagonal graphene lattice. The CeO 2 /eGr composite sample possesses both Raman characteristics of CeO 2 and eGr. XRD was used to analyze the structure of the prepared materials. In Figure 2b Figure 2d; it can be deconvoluted into eight peaks and labeled as v 0 , v 1 , v 2 , v 3 (3d 3/2 region), and u 0 , u 1 , u 2 , u 3 (3d 5/2 region). Peaks v 0 , v 2 , v 3 and u 0 , u 2 , u 3 are characteristics of Ce(IV) 3D final states, while, v 1 and u 1 are Ce(III) 3D final states [35]. Therefore, the as-prepared CeO 2 contains part of Ce(III), and the percentage of Ce(III) was calculated by Equation (1), which is based on the fitted areas of the corresponding peaks of Ce(III) and Ce(IV) [36].
The calculated percentage of Ce(III) is~20%, which is similar to the previously reported CeO 2 nanomaterials [36]. The presence of Ce(III) indicates the formation of oxygen vacancies, which can provide catalytically active sites for the sensor. The O1s spectrum can be separated into three peaks as illustrated in Figure 2e, the peak located at~529.9 eV corresponds to the crystal lattice oxygen in CeO 2 . The peak located at 532.2 eV and 533.4 eV could be, respectively, related to the oxygen vacancies and the adsorbed oxygen on the composite [37,38]. The C1s spectrum can be separated into three peaks (Figure 2f). The peak placed at 284.6 eV corresponds to the sp2 carbon atoms or can be attributed to C=C [39]. The other small peaks at 286.1 and 287.9 eV correspond to C-O and C=O on the surface of the composite, respectively.

The Electrochemical Characteristic of the Prepared Electrode
The prepared eGr, CeO2, and CeO2/eGr composites (

The Electrochemical Characteristic of the Prepared Electrode
The prepared eGr, CeO 2 , and CeO 2 /eGr composites (1:1 wt.) were, respectively, cast on a glassy carbon electrode (eGr/GCE, CeO 2 /GCE and CeO 2 /eGr/GCE), and their elec-trochemical performances were firstly estimated by Cyclic voltammetry (CV) at 50 mV s −1 in the solution of 5 mM [Fe(CN) 6 ] 3−/4− and 0.1 M KCl. The bare GCE electrode was conducted as the control sample. From Figure 3a, all electrodes show different levels of electrochemical activity, after evaluating the redox peak current densities and CV curve area, the electrochemically active follows the order of CeO 2 /eGr/GCE > eGr/GCE > CeO 2 /GCE > GCE. This suggests that the CeO 2 /eGr/GCE has the largest specific surface area, and the best electrochemically active and kinetic, which could arise from the synergistic effects of excellent catalytic active sites of CeO 2 and good electron transference of eGr. In addition, the standard heterogeneous rate constant (k 0 ) for bare GCE, CeO 2 /eGr/GCE, eGr/GCE, CeO 2 /GCE were calculated by Nicholson's equation [40] and the values are, respectively, 0.0041 cm·s −1 , 0.0077 cm·s −1 , 0.0045 cm·s −1 , 0.0049 cm·s −1 . The CeO 2 /eGr/GCE has the highest value of 0.0077 cm s −1 that verifies CeO 2 /eGr composite provides the best conditions for electron transfer.
Biosensors 2022, 12, x FOR PEER REVIEW 7 of 13 The fr determined by electrochemical methods depends not only on the size of the electrode (the actual surface), but also on the number of redox centers that can be reached on the surface. Therefore, the fr was calculated to be 2.425, 2, and 1.625 for CeO2/eGr/GCE, eGr/GCE, and CeO2/GCE, respectively.

The Electrochemical Performance of the Prepared Electrode for 4-BPA Detection
The GCE, eGr/GCE, CeO2/GCE and CeO2/eGr/GCE (1:1 wt.) for 4-BPA detection were characterized by CV in the electrolyte with and without 50 μmol L −1 4-BPA in 0.1 mol L −1 phosphate buffer (pH = 3). As displayed in Figure 4a, when the presence of 50 μmol L −1 4-BPA, all electrodes present one oxidation peak, which indicates the 4-BPA is electrochemically detectable and the reaction of 4-BPA is irreversible. The CeO2/eGr/GCE (1:1 wt.) shows the highest oxidation peak current (Ipa) and the lowest onset potential; this verified that the CeO2/eGr composite has the best sensitivity for electrochemical detection of 4-BPA, which should be attributed to the synergetic effect of the catalytic properties of CeO2 and the fast electron transference of eGr. The ratios between CeO2 and eGr have further been measured and shown in Figure 4b. With the CeO2:eGr ratio increasing from 0:4 to 1:1, the oxidation peak current of 4-BPA increases and reaches the maximum at the ratio of 1:1, then the peak current drops with the further increase in the CeO2 content. The reason could be that CeO2 is a semiconductor, and it provides electrocatalytic activity sites. When the CeO2 content is too low, it will not create enough activity sites. While the content is higher than 1:1, the conductivity and electron transference of the electrode will decrease. Therefore, the optimum ratio was 1:1 for 4-BPA detection and selected in the following study.
The different loading amounts of CeO2/eGr composite on GCE were measured with 10 μmol L −1 4-BPA (Supporting information, Figure S2). It was found that the oxidation peak current of 4-BPA increases with the loading volume, increasing to 6 μL, while the response decreased when the loading amount further increased (Figure 4c). This could be due to the lack of cover on the electrode surface when the loading composites were below 6 μL, while too much loading amount would have hindered the activity sites that cause the decrease in the response peak current [43].
The PBS, Britton-Robison (B-R), and acetic acid-sodium acetate buffer solutions were evaluated as supporting electrolytes for 4-BPA detection (Supporting information, Figure  S3). Among these supporting electrolytes, the PBS buffer solution shows more sensitivity for 4-BPA detection. Therefore, PBS was selected as a supporting electrolyte. Moreover, I pa = (2.69 × 10 5 )n 3/2 AD 1/2 Cv 1/2 (2) where n refers to electron transfer number, A is the active surface area, C is the concerta-  (Figure 3b), the active surface area of CeO 2 /eGr/GCE was calculated to be 0.097 cm 2 (Figure 3c), which is higher than that of the electroactive surface areas of GCE (0.04 cm 2 ), eGr/GCE (0.08 cm 2 ), and CeO 2 /GCE (0.045 cm 2 ), which is displayed in the Supporting Information, Figure S1. This result agrees well with the electrochemical activity order of the prepared sensors. The roughness factor (f r ) of the electrochemical sensors was calculated to evaluate the actual active surface area by comparing the oxidation peak current (I pa ) of the prepared sensor to bare GCE for [Fe(CN) 6 ] 3−/4− reaction [42]. Peaks ratio is equal to areas ratio according to the proposed Equation (3) [42].
The f r determined by electrochemical methods depends not only on the size of the electrode (the actual surface), but also on the number of redox centers that can be reached on the surface. Therefore, the f r was calculated to be 2.425, 2, and 1.625 for CeO 2 /eGr/GCE, eGr/GCE, and CeO 2 /GCE, respectively.

The Electrochemical Performance of the Prepared Electrode for 4-BPA Detection
The GCE, eGr/GCE, CeO 2 /GCE and CeO 2 /eGr/GCE (1:1 wt.) for 4-BPA detection were characterized by CV in the electrolyte with and without 50 µmol L −1 4-BPA in 0.1 mol L −1 phosphate buffer (pH = 3). As displayed in Figure 4a, when the presence of 50 µmol L −1 4-BPA, all electrodes present one oxidation peak, which indicates the 4-BPA is electrochemically detectable and the reaction of 4-BPA is irreversible. The CeO 2 /eGr/GCE (1:1 wt.) shows the highest oxidation peak current (I pa ) and the lowest onset potential; this verified that the CeO 2 /eGr composite has the best sensitivity for electrochemical detection of 4-BPA, which should be attributed to the synergetic effect of the catalytic properties of CeO 2 and the fast electron transference of eGr. The ratios between CeO 2 and eGr have further been measured and shown in Figure 4b. With the CeO 2 :eGr ratio increasing from 0:4 to 1:1, the oxidation peak current of 4-BPA increases and reaches the maximum at the ratio of 1:1, then the peak current drops with the further increase in the CeO 2 content. The reason could be that CeO 2 is a semiconductor, and it provides electrocatalytic activity sites. When the CeO 2 content is too low, it will not create enough activity sites. While the content is higher than 1:1, the conductivity and electron transference of the electrode will decrease. Therefore, the optimum ratio was 1:1 for 4-BPA detection and selected in the following study. pH is another key impact factor for electrochemical analysis. The pH values ranging from 3 to 6.5 were evaluated in 0.1 M PBS buffer solution (Supporting information, Figure S4). It can be seen that the optimum response pH for 4-BPA was 3, and the response gradually decreased as the pH increased ( Figure 4d). This phenomenon could be due to the conductivity loss and the presence of carboxyl groups with the increase in pH [44]. The oxidation process of 4-BPA on CeO2/eGr/GCE was further studied by linear sweep voltammogram (LSV); different scan rates (50 mV s −1 to 450 mV s −1 ) were conducted and 20 μmol L −1 4-BPA was used. As exhibited in Figure 5a, the Ipa increased when the scan rates increased. Moreover, the oxidation peaks positively shifted. More importantly, the oxidation peak current increased linearly with the square root of scan rates (Figure  5b), the linear regression is Ipa = 3.936v 1/2 − 9.318, R 2 = 0.999 and the linear relationship for ln(I) versus ln(v) was established and the slope was found to be 0.82 (Supporting information, Figure S5), which indicates that the electrochemical oxidation of 4-BPA on CeO2/eGr/GCE was controlled by a mixed process [45]. The relationship between Epa and ln v is presented by Laviron's theory [46]: The different loading amounts of CeO 2 /eGr composite on GCE were measured with 10 µmol L −1 4-BPA (Supporting information, Figure S2). It was found that the oxidation peak current of 4-BPA increases with the loading volume, increasing to 6 µL, while the response decreased when the loading amount further increased (Figure 4c). This could be due to the lack of cover on the electrode surface when the loading composites were below Biosensors 2022, 12, 760 8 of 13 6 µL, while too much loading amount would have hindered the activity sites that cause the decrease in the response peak current [43].
The PBS, Britton-Robison (B-R), and acetic acid-sodium acetate buffer solutions were evaluated as supporting electrolytes for 4-BPA detection (Supporting information, Figure S3). Among these supporting electrolytes, the PBS buffer solution shows more sensitivity for 4-BPA detection. Therefore, PBS was selected as a supporting electrolyte. Moreover, pH is another key impact factor for electrochemical analysis. The pH values ranging from 3 to 6.5 were evaluated in 0.1 M PBS buffer solution (Supporting information, Figure S4). It can be seen that the optimum response pH for 4-BPA was 3, and the response gradually decreased as the pH increased (Figure 4d). This phenomenon could be due to the conductivity loss and the presence of carboxyl groups with the increase in pH [44].
The oxidation process of 4-BPA on CeO 2 /eGr/GCE was further studied by linear sweep voltammogram (LSV); different scan rates (50 mV s −1 to 450 mV s −1 ) were conducted and 20 µmol L −1 4-BPA was used. As exhibited in Figure 5a, the I pa increased when the scan rates increased. Moreover, the oxidation peaks positively shifted. More importantly, the oxidation peak current increased linearly with the square root of scan rates (Figure 5b), the linear regression is I pa = 3.936v 1/2 − 9.318, R 2 = 0.999 and the linear relationship for ln(I) versus ln(v) was established and the slope was found to be 0.82 (Supporting information, Figure S5), which indicates that the electrochemical oxidation of 4-BPA on CeO 2 /eGr/GCE was controlled by a mixed process [45]. The relationship between E pa and ln v is presented by Laviron's theory [46]: where α is the charge transfer coefficient, E 0 is the apparent potential, n is the number of the electron, v is the scan rate, the values of R, T and F are 8.314 J K −1 mol −1 , 298 K and 96485 C mol −1 , respectively. Therefore, the number of electrons can be calculated via the linear equations of E pa − ln v (Supporting information, Figure S6). Generally, for an irreversible electrode process, the value of α is assumed to be 0.5. Hence, the value of n is calculated to be 2. Therefore, the electrocatalytic oxidation mechanism of 4-BPA is proposed in Figure 5c, where 4-BPA will firstly be degraded to 4-bromophenol. Then, the 4-bromophenol will be electrochemically oxidized to enzoquinone [47]. The whole process has two electrons involved, which is in accordance with the calculated results from Laviron's theory. DPV shows the sensitive response to low concentrations as compared to LSV. Therefore, DPV was used to detect 4-BPA in PBS solution with different concentrations. As illustrated in Figure 5d BPA varying from 0.3 to 150 μM. However, there are two linear relationships obtained. From Figure 5e, in the range of 0.3 to 20 μM, the linear regression equation is Ipa = 0.75c + 0.08, (R 2 = 0.991), and from 20 to 150 μM, the linear relationship is Ipa = 0.199c + 11.24, (R 2 = 0.993). Moreover, the lowest detection limit (LOD) was calculated to be 0.06 μmol L −1 according to the following equation of 3 s/m, where m is the slope of the regression equation and s is the standard deviation of the response.

The Repeatability and the Anti-Interference Ability of the CeO 2 /eGr/GCE
The repeatability of the CeO 2 /eGr/GCE was carried out with 10 µmol L −1 4-BPA by means of LSV (Supporting information, Figure S7). After 10 continuous measurements (Figure 6a), the relative standard deviation (RSD) of the oxidation peak currents was found to be 2.35% for 4-BPA. After storing the electrode at 4 • C for 15 days, the electroactive oxidation currents of 4-BPA reduced 3.21% compared to the original value. These results indicate that the proposed sensor has good stability and repeatability.
To estimate the anti-interference ability of the CeO 2 /eGr/GCE, some regular interfering species were tested. From Figure 6b, no considerable interferences were observed in the presence of fifty-fold excess K + , Na + , Mg 2+ , glucose, sucrose, and ten-fold rutin, quercetin, fenitrothion, imidacloprid, clothianidin, IAA and SA (peak current change < 6%). results indicate that the proposed sensor has good stability and repeatability.
To estimate the anti-interference ability of the CeO2/eGr/GCE, some regular interfering species were tested. From Figure 6b, no considerable interferences were observed in the presence of fifty-fold excess K + , Na + , Mg 2+ , glucose, sucrose, and ten-fold rutin, quercetin, fenitrothion, imidacloprid, clothianidin, IAA and SA (peak current change < 6%).

The Practical Application of the CeO2/eGr/GCE
To evaluate the practicability of CeO2/eGr/GCE, the sensor was used to detect 4-BPA in real apple samples; the analytical results are listed in Table 1. No response of 4-BPA was found in the apple sample, and the recoveries were evaluated by the standard addition method. The recoveries are in the range of 90-108%. This proposed CeO2/eGr sensor shows great potential for the detection of plant growth regulators in the agricultural industry.

Conclusions
In this work, we used an eco-friendly method of electrochemical exfoliation to prepare eGr and the hydrothermal method to prepare CeO2. Then, we constructed a selective, sensitive electrochemical method based on a eGr/CeO2 composite and modified GCE to

The Practical Application of the CeO 2 /eGr/GCE
To evaluate the practicability of CeO 2 /eGr/GCE, the sensor was used to detect 4-BPA in real apple samples; the analytical results are listed in Table 1. No response of 4-BPA was found in the apple sample, and the recoveries were evaluated by the standard addition method. The recoveries are in the range of 90-108%. This proposed CeO 2 /eGr sensor shows great potential for the detection of plant growth regulators in the agricultural industry.

Conclusions
In this work, we used an eco-friendly method of electrochemical exfoliation to prepare eGr and the hydrothermal method to prepare CeO 2 . Then, we constructed a selective, sensitive electrochemical method based on a eGr/CeO 2 composite and modified GCE to electrochemically detect 4-BPA. The prepared CeO 2 /eGr sensor exhibited excellent electrocatalytic activity due to the synergistic effect of the excellent catalytic active sites of CeO 2 and good electron transference of the eGr. The developed CeO 2 /eGr sensor has an active surface area of 0.097 cm 2 and a roughness factor of 2.425. The optimized ratio of CeO 2 :eGr is 1:1 for 4-BPA determination. The CeO 2 /eGr sensor exhibited good linearity in a wide range from 0.3 to 150 µmol/L and the lowest detection limit of 0.06 µmol/L for 4-BPA detection. Electrochemical oxidation of 4-BPA followed a mix-controlled process, which involves 2e in the transference processes. In addition, there were no significant interfering substances among K + , Na + , Mg 2+ , rutin, quercetin, fenitrothion, imidacloprid, clothianidin, IAA, SA, glucose, and sucrose. The proposed electrochemical sensor showed excellent repeatability with the RSD of 2.35% for 10 measurements. In addition, the recoveries of the proposed CeO 2 /eGr sensor were evaluated by the standard addition method, and are in the range of 90-108%. The low cost and easily-made sensor has great potential for detecting other plant growth regulators.