| Literature DB >> 32316351 |
Ming Chen1, Miao Zhang1,2, Xuming Wang1, Qingliang Yang1, Maohua Wang1,2, Gang Liu1,2, Lan Yao1.
Abstract
In this paper, an all-solid-state nitrate doped polypyrrole (PPy(NO3-) ion-selective electrode (ISE) was prepared with a nanohybrid composite film of gold nanoparticles (AuNPs) and electrochemically reduced graphene oxide (ERGO). Preliminary tests on the ISE based in-situ soil nitrate-nitrogen (NO3--N) monitoring was conducted in a laboratory 3-stage column. Comparisons were made between the NO3--N content of in-situ soil percolate solution and laboratory-prepared extract solution. Possible influential factors of sample depth, NO3--N content, soil texture, and moisture were varied. Field-emission scanning electron microscopy (FESEM) and X-ray powder diffraction (XRD) characterized morphology and content information of the composite film of ERGO/AuNPs. Due to the performance excellence for conductivity, stability, and hydrophobicity, the ISE with ERGO/AuNPs illustrates an acceptable detection range from 10-1 to 10-5 M. The response time was determined to be about 10 s. The lifetime was 65 days, which revealed great potential for the implementation of the ERGO/AuNPs mediated ISE for in-situ NO3--N monitoring. In-situ NO3--N testing results conducted by the all-solid-state ISE followed a similar trend with the standard UV-VIS method.Entities:
Keywords: AuNPs; ERGO; all-solid-state ISE; in-situ soil monitoring; nanohybrids composite film; nitrate-nitrogen
Year: 2020 PMID: 32316351 PMCID: PMC7219068 DOI: 10.3390/s20082270
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Fabrication diagram of all-solid-state ion-selective electrodes (ISEs) with mediate films of ERGO/AuNPs and electrochemically reduced graphene oxide (ERGO). Note: AuNPs are gold nanoparticles.
Figure 2Diagram of the soil cylinder: (a) 3-stage design; (b) the drawing of the middle stage.
Figure 3The schematic of ISE-based in-situ/laboratory soil NO3−-N detection.
The soil information.
| No. | Factors | Mass Moisture (%) | Nitrate Nitrogen (mg/L) | Total -N (g/Kg) | Available -P (mg/L) | Available -K (mg/L) | Organic Matter (g/Kg) | |
|---|---|---|---|---|---|---|---|---|
| 1 | Depth/cm | 10 | 19.91 | 61.87 | 6.12 | 5.14 | 12.51 | 10.62 |
| 2 | 20 | 20.32 | 68.47 | 6.87 | 5.68 | 11.21 | 10.59 | |
| 3 | 40 | 21.42 | 75.67 | 7.96 | 4.78 | 16.53 | 10.77 | |
| 4 | 50 | 21.05 | 70.98 | 7.41 | 4.28 | 15.14 | 10.14 | |
| 5 | 80 | 19.82 | 47.88 | 4.94 | 5.77 | 13.41 | 10.67 | |
| 6 | 90 | 20.11 | 52.31 | 6.11 | 6.41 | 15.77 | 10.48 | |
| 7 | Content/u.f. * | +0 | 19.17 | 6.55 | 0.90 | 4.43 | 15.01 | 10.65- |
| 8 | +0.5 | 20.54 | 59.44 | 7.12 | 3.42 | 16.11 | 10.47 | |
| 9 | +1 | 21.22 | 79.41 | 8.14 | 3.87 | 16.78 | 10.99 | |
| 10 | +2 | 19.98 | 116.08 | 13.17 | 3.10 | 15.32 | 11.25 | |
| 11 | +4 | 20.14 | 172.4 | 16.98 | 3.98 | 16.87 | 10.57 | |
| 12 | +8 | 20.54 | 245.16 | 24.13 | 3.52 | 15.64 | 10.42 | |
| 13 | Texture/mm | <0.9 | 21.21 | 51.75 | 5.13–5.94 | 7.12 | 16.21 | 10.55 |
| 14 | 0.9~2.5 | 20.41 | 55.47 | 5.19 | 8.79 | 16.22 | 10.55 | |
| 15 | >2.5 | 19.87 | 54.31 | 4.99 | 10.72 | 16.21 | 10.51 | |
| 16 | Moisture/g/g | 10% | 11.23 | 72.44 | 7.95 | 8.74 | 16.15 | 16.74 |
| 17 | 15% | 15.11 | 77.64 | 7.69 | 8.74 | 16.12 | 16.77 | |
| 18 | 20% | 20.54 | 49.59 | 4.84 | 17.78 | 16.41 | 16.14 | |
| 19 | 25% | 24.67 | 51.20 | 5.23 | 9.14 | 16.74 | 16.62 | |
| 20 | 30% | 30.87 | 50.24 | 5.12 | 11.24 | 16.59 | 16.48 | |
* u.f. Represents the unit factor. Soil moisture was controlled around the value of 20%. Standard NaNO3 solution was used to achieve the soil water content, where +1 u.f. was applying 0.125 g NaNO3 into “250 mL DDW + 1000 g pre-dried soil”. The other scale was correspondingly adjusted. The 0 u.f. group used DDW without NaNO3.
Figure 4Morphology and X-ray powder diffraction (XRD) characterization of ERGO, AuNPs, and ERGO/AuNPs. (a) Field-emission scanning electron microscopy (FESEM) image of a layered ERGO modified on the surface of GCE in 10.0 k. (b) FESEM image of a layered AuNPs changed on the surface of GCE in 10.0 k. (c) FESEM image of ERGO/AuNPs modified on the surface of the electrode in 10.0 k. (d) XRD pattern of diffractogram of ERGO/AuNPs composite film.
Figure 5ISE Performance comparisons between two tested mediate layers of ERGO/AuNPs and ERGO (a) cyclic voltammetries (CVs); (b) EISs; (c) OCPT; (d) stability; (e) response time; (f) lifetime of the ISE with the composite mediate film (Supplementary Materials S2).
The selectivity coefficients.
|
| ClO4− | I− | Br− | Cl− | F− | CH3COO− | HCO3− | SO42- | H2PO4− |
|---|---|---|---|---|---|---|---|---|---|
| PPy(NO3−) | 1 × 10−1 | 5 × 10−2 | 1.1 × 10−1 | 3 × 10−2 | 1 × 10−2 | 5.2 × 10−4 | 5.5 × 10−4 | 5.9 × 10−4 | 6.4 × 10−5 |
* represented for the selectivity coefficient. The primary ion is NO3−. Jn- is the tested interference ion, where n is the number of electric charge of J. The testing method is the matched solution method [35,36]. Note: PPy(NO3−) is nitrate doped polypyrrole.
Figure 6In-situ and laboratory monitoring of soil NO3−-N with the GCE/AuNPs/PPy(NO3−) ISE and UV-VIS (Supplementary Materials S2).
The recovery rate of GCE/AuNPs/PPy(NO3−) ISE.
| Sample Info. | Detected (mg/L) | Added (mg) | Found (mg/L) | Recovery (%) |
|---|---|---|---|---|
| No.7-extract | 6.26 ± 0.04 | 0.5 | 21.68 ± 0.39 | 107.91 |
| No.9-extract | 80.68 ± 2.23 | 5 | 176.49 ± 1.02 | 95.62 |
| No.11-extract | 172.84 ± 3.46 | 5 | 305.01 ± 1.16 | 105.73 |
| No. 7-percolate | 25.59 ± 0.16 | 2 | 82.52 ± 2.25 | 99.61 |
| No. 5-percolate | 183.72 ± 1.92 | 5 | 288.32 ± 4.02 | 104.6 |
| No. 2-percolate | 349.26 ± 4.28 | 5 | 471 ± 4.55 | 97.39 |