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Article

Development and Application of an ICP-AES Method for the Determination of Nutrient and Toxic Elements in Savory Snack Products after Autoclave Dissolution

by
Natalia Manousi
and
George A. Zachariadis
*
Laboratory of Analytical Chemistry, Department of Chemistry, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece
*
Author to whom correspondence should be addressed.
Submission received: 5 November 2020 / Revised: 20 November 2020 / Accepted: 23 November 2020 / Published: 26 November 2020
(This article belongs to the Special Issue Advances in Food and Biological Samples Analysis)

Abstract

:
In this study, a method for the determination of trace elements in snacks using inductively coupled plasma–atomic emission spectrometry (ICP-AES) is presented. The examined elements were Pb, Ni, Cr, Cu, Mg, Zn, Fe, Al, Ba, Ca, Co, Mn and Cd. Under the optimized conditions, digestion of 300 mg of the snack samples was performed by the addition of 5 mL of nitric acid in a Teflon autoclave and by heating the obtained mixture at 120 °C for 75 min. In order to evaluate the efficiency of the proposed protocol, method linearity, accuracy precision, limits of detection (LODs) and limits of quantification (LOQs) were evaluated. The relative standard deviations (RSD%) for all elements were lower than 13.5%, demonstrating that the method offered good precision. The relative recoveries values (R%) ranged between 80–120%, demonstrating that the method offered good accuracy. The LODs for all the trace elements ranged between 0.18 and 3.75 μg g−1, while the LOQs ranged between 0.60 and 12.50 μg g−1. Finally, the proposed protocol was implemented for the analysis of a wide variety of savory snack samples including commercial snacks from corn, potato chips, popcorns, puffed rice cake and crackers.

1. Introduction

Elemental food composition data are important to consumers and health professionals since metals play a significant role in human nutrition, because of their toxic and carcinogenic effects [1]. In foodstuffs, the major chemical elements are sodium, calcium, potassium and magnesium [2]. Other nutrient elements that are considered essential for human health include copper, iron and zinc [3]. Metals such as barium are generally considered non-essential and their function in biological systems is not known [4]. Finally, there are elements like lead, cadmium and mercury that exhibit high toxicity, and they occur in the environment mainly due to environmental pollution from anthropogenic sources [5]. These metals can migrate through the food chain to humans. As a result, it is critical to determine them in foodstuffs.
There are multiple potential sources of mineral occurrence in food samples, including their initial presence in the raw materials, the processing practices used for food production, contamination from the equipment used during production and/or storage and contamination of the environment. Toxic chemical elements primarily enter foodstuffs due to the contact with the environment such as polluted soil, water and air that falls as precipitation with rain and can contaminate food raw materials [6,7].
Snacks like potato chips, corn snacks and popcorns are common in daily diet, while they are widely consumed in large amounts also from children [8]. Potato chips can be produced by deep fat frying in order to have a unique texture flavor combination, that makes them desirable for the consumers. Various parameters including nature of oil, temperature and duration of frying, and storage conditions can determine the quality of chips [9]. Popcorn (Zea mays Everta) is another popular snack product being considered healthier than chips due to its higher fiber and antioxidant content [10]. Upon heating to sufficient temperature, the caryopsis expands resulting in a large expansion of volume, producing the desired product [11]. Crackers are also popular snacks with low contents of moisture, sugar and fat that exhibit a thin and crispy texture. Crackers are also widely consumed worldwide [8].
Among the several methods for the determination of trace elements, atomic spectroscopy techniques are considered the most sensitive, selective and rapid. The most widely used spectroscopic techniques for the qualitative and quantitative determination of metals in foodstuffs include inductively coupled plasma atomic emission spectroscopy (ICP-AES) [12], inductively coupled plasma mass spectrometry (ICP-MS) [13] flame atomic absorption spectrometry (FAAS) [14], cold vapor atomic absorption spectroscopy (CV-AAS) [15] and electrothermal atomic absorption spectroscopy (ETAAS) [16]. ICP-AES exhibits many benefits including high sensitivity, fastness, simplicity of analysis and ease in overcoming interferences [12].
For the determination of trace elements in food samples by ICP-AES, the sample has to be converted into a solution. Therefore, sample digestion procedure is necessary prior to sample analysis [17]. Multiple digestion techniques including dry ashing and wet ashing, as well as conventionally heating procedures, microwave digestion and acid bomb digestion have been studied. Wet digestion is an important methodology for the digestion of the trace heavy metals in solid samples. Nitric acid is an important oxidizing acid that can be employed for wet digestion of foodstuffs that have a high carbohydrate and fat content, in order to reduce carbonization and to ensure the efficiency of the digestion process [4].
In this study, a simple and rapid ICP-AES method was developed for the determination of trace elements (Pb, Ni, Cr, Cu, Mg, Zn, Fe, Al, Ba, Ca, Co, Mn and Cd) in savory snack samples (i.e., corn snacks, potato chips, popcorns and crackers) after wet digestion with nitric acid. Various dissolution procedures were investigated in order to achieve complete digestion of the examined samples. Furthermore, validation of the proposed method was performed in terms of linearity, limits of detection, limits of quantification, accuracy and precision. The developed method was successfully employed for the analysis of savory snacks of different types from Greek market.

2. Materials and Methods

2.1. Materials and Chemicals

Nitric acid 65% of analytical grade was supplied by Merck (Darmstadt, Germany) and used for sample digestion and solution preparation. High purity double distilled water was used in all the experiments. Stock standard solutions (1000 mg L−1) of lead, nickel, chromium, copper, magnesium, zinc, iron, aluminum, barium, calcium, cobalt, manganese and cadmium in 0.5 M nitric acid were supplied by Merck (Darmstadt, Germany). Working standard solutions were prepared daily by appropriate serial dilutions of the stock solutions in 0.5 M nitric acid.

2.2. Instrumentation

In this study, a Perkin-Elmer Optima 3100XL axial viewing ICP-AES equipped with a cyclonic spray chamber and a GemTip cross-flow nebulizer was used for the determination of the trace elements. The samples were introduced into the ICP-AES system at a flow rate of 1.0 mL min−1, using a three-channel peristaltic pump and Tygon-type polyvinyl chloride (PVC) peristaltic pump tubes (inner diameter 0.030 in). The nebulizer argon gas flow rate, the auxiliary argon gas flow rate and the plasma argon gas flow rate were 0.85, 0.6 and 15 L min−1, respectively. Nine points per peak were used for the measurement of the peak area. The operating conditions of the ICP-AES system were as such: power output: 1.5 kW, pixel resolution: 0.006 nm at 200 nm, torch type: Fassel type, fully demountable and torch alumina injector inner diameter: 2.0 mm. Two analytical wavelengths were recorded for each element and the peak area was chosen as a signal measurement mode. Table 1 summarizes the recorded emission lines for each element.
Digestion of the snack samples was performed in Teflon® (DuPont, DE, USA) vessels. The vessels were placed in a steel autoclave and heated in a six-position aluminum block (Berghof, BTR, 941, Eningen, Germany). The maximum working volume of the vessels were 50 mL, and the maximum operating temperature was 180 °C.
All digestion vessels, glassware and storage bottles were soaked in 10% (v/v) nitric acid for at least 24 h and they were washed extensively with double de-ionized water prior to their use.

2.3. Sample Collection

In this work twenty-one snack samples (i.e., nine snacks from corn coded as SFC, three popcorn samples coded as PC, one puffed rice cake sample coded as PRC, six potato chips samples coded as P and two cracker samples coded as CR) were analyzed to determine the concentrations of Pb, Ni, Cr, Cu, Mg, Zn, Fe, Al, Ba, Ca, Co, Mn and Cd. The snacks analyzed in this study belong to the most popular brands in Greek market. The following snacks from corn were analyzed: SFC-1 (cheese flavor, oven baked corn snack), SFC-2 (pizza flavor, oven baked corn snack), SFC-3 (cheese flavor, oven baked corn snack), SFC-4 (cheese flavor, oven baked corn snack), SFC-5 (cheese and tomato flavor, oven baked corn snack), SFC-6 (cheese flavor, oven baked corn snack), SFC-7 (oven baked corn snack with peanut and chestnut), SFC-8 (oven baked corn snack with peanut and chestnut) and SFC-9 (bacon flavor, oven baked corn snack). The following popcorn samples from corn were analyzed: PC-1 (popcorn with salt), PC-2 (butter flavor, popcorn sample) and PC-3 (popcorn with salt). The following puffed rice cake sample was analyzed: PRC-1 (oregano flavored puffed rice cakes). The following potato chip samples were analyzed: P-1 (potato chips with salt), P-2 (potato chips with salt), P-3 (potato chips with salt), P-4 (potato chips with oregano flavor), P-5 (potato chips with oregano flavor) and P-6 (potato chips with barbeque flavor). The following cracker samples were analyzed: CR-1 (crackers with salt) and CR-2 (crackers with salt). All samples were purchased from local shops in Thessaloniki, Greece.

2.4. Validation of the ICP-AES Method

The herein reported ICP-AES method was validated in terms of linearity, limits of detection (LOD), limits of quantification (LOQ), accuracy and precision.
For the evaluation of method linearity, calibration curves for each element were constructed by plotting the peak area of the optimum emission line to the concentration of the standard solution solutions or spike solutions for standard addition curves. Subsequently, least square linear regression analysis was used to evaluate the slope, intercept and coefficient of determination.
The method’s accuracy was evaluated in terms of bias between nominal and measured concentrations of spiked samples, expressed as relative recovery (R%) and the method precision, expressed as relative standard deviation (RSD%), was evaluated by analyzing in five replicate measurements spiked sample solutions.
Finally, for the LODs and LOQs, ten separate blank solutions were independently prepared and analyzed. The LOD value was the concentration that corresponds to three times the standard deviation of the measurements for the blank solutions divided by the slope of calibration curves for each element, while the LOQ value was the concentration that corresponds to ten times the standard deviation of the measurements for the blank solutions divided by the slope of calibration curves for each element [18,19].

3. Results and Discussion

3.1. Selection of the Emission Line

The selection of the optimum emission lines was based on the intensity and their sensitivity (i.e., the higher slope among the calibration curves for the recorded emission lines), as well as the absence of spectral interferences. Finally, the following emission lines were chosen Ba 230.425 nm, Cd 226.502 nm, Cu 324.752 nm, Ni 232.003 nm, Pb 217.000 nm; Zn 213.857 nm, Ca 396.847 nm, Mg 280.271 nm, Fe 238.204 nm, Mn 257.610 nm, Al 237.313 nm, Cr 357.869 nm and Co 238.892.

3.2. Sample Preparation of the Snack Samples

In order to find the optimal digestion procedure for complete sample decomposition, different wet acid methods were tested. For this purpose, the sample mass was kept constant and different digestion mixtures were evaluated. The final digest was diluted to a final volume of 25 mL in volumetric flasks with double-deionized water. Table 2 summarizes the observations on the effectiveness of the dissolution tests. Dissolution trials were performed with 300 mg of sample (SFC-1, PC-1, PRC-1, P-1 and CR-1). Further increase of the sample amount resulted in slight sedimentation and it probably required higher consumption of nitric acid. Therefore, 300 mg of sample were chosen to avoid high consumption of sample and chemicals. As it can be observed, in order to obtain a clear sample solution without precipitation, autoclave digestion of 300 mg of sample with 5 mL of nitric acid for 75 min at 120 °C gave the best results. Finally, these conditions were chosen for snack samples digestion. Alternative, digestion time can be further reduced with the use of microwave assisted digestion.

3.3. Figures of Merit

The performance of the ICP-AES method was evaluated under the conditions described above. Table 3 shows the calibration curve, the linear range and the LOD and LOQ for each element. As it can be seen, coefficients of determination for all metals were very good (r2 > 0.9998) and wide linear ranges were obtained. According to the specifications of the International Union of Pure and Applied Chemistry (IUPAC) [20], blank solutions were used to calculate the LOD and LOQ values of the method. The LODs and LOQs of the ICP-AES method ranged between 0.18–3.75 μg g−1 and 0.60–12.5 μg g−1, respectively.
In order to evaluate the accuracy and the precision of the ICP-AES method, spiked standard solutions at two different concentration levels (50 and 100 μg g−1) were analyzed 5 times. Table 4 and Table 5 summarize the accuracy and precision results for the examined elements. The relative recovery in the spiked samples ranged between 80–120% for all concentration levels, indicating that the accuracy of the ICP-AES method is satisfactory. Finally, the RSD% values were lower than 13.5%, indicating that the precision of the ICP-AES method is satisfactory.
The herein developed method was compared with other studies reported in the literature. Gopalani et al. [17] performed wet digestions of potato chips and biscuits for the determination of their content in various metals (i.e., aluminum, cadmium, cobalt, chromium, copper, iron, manganese, magnesium, nickel, lead and zinc). For sample dissolution, wet digestion of 1 g of sample was performed with three different mixtures of acids i.e., HNO3:H2O2 (8:4), HNO3:H2SO4 (8:4) and HNO3:HCl (8:4). In total, 12 mL of reagents were required, while dissolution was achieved at 130 °C in 3 h. Narin et al. [21] performed wet digestions of potato and corn chips for the determination of iron, zinc, manganese and copper. Dissolution of 1 g of the sample was achieved by the addition of a mixture of HNO3:H2O2 (8:4). In this case, the duration of the wet digestion was also 3 h at 130 °C, while it required 12 mL of the dissolution mixture. It can be concluded that the employment of autoclave dissolution can significantly reduce the requirements for sample and reagent consumption, while it also reduce the sample preparation time. It is important to mention that microwave digestion can be employed to further reduce the total analysis time.

3.4. Analysis of Snack Products

The results from the analysis of various snack samples collected from the Greek market are presented in Table 6. All samples were analyzed in duplicate. As it can be observed, magnesium and calcium were the major elements in snack samples since their concentrations were between 242.5–1556.3 μg g−1 and 31.0–767.4 μg g−1, respectively. Iron, copper, zinc and aluminum were detected in most samples and their concentrations were between 5.9–305.0 μg g−1 for Fe, 3.3–7.7 μg g−1 for Cu, 3.3–19.4 μg g−1 for Zn and 4.6–54.2 μg g−1 for Al. Chromium, nickel, manganese and barium were also present in the snack samples. Their concentrations were between 0.60–1.26 μg g−1 for Cr, 0.91–2.1 μg g−1 for Ni, 1.9–6.0 μg g−1 for Mn and 0.83–2.30 μg g−1 for Ba. Finally, the concentrations for lead, cadmium and cobalt were lower than the method LOD.

4. Conclusions

In this work, a simple and rapid ICP-AES method was developed and applied for the determination of major, minor and trace elements (Pb, Ni, Cr, Cu, Mg, Zn, Fe, Al, Ba, Ca, Co, Mn and Cd) in snack samples. Various wet digestion procedures with nitric acid were evaluated for the complete dissolution of the snack samples. It was observed that 5 mL of nitric acid was required for the digestion of 300 mg of snack samples at 120 °C, in a steel autoclave with Teflon vessels. After, optimization of the digestion procedure of the snack samples, the proposed method was validated in terms of linearity, LOD and LOQ values, accuracy and precision. Finally, twenty-one snack samples (i.e., potato chips, snacks from corn, popcorns, puffed rice cake and crackers) from the local market were analyzed. Calcium and magnesium were the major elements in the samples. Nickel, chromium, coper, manganese, zinc, iron, aluminum and barium were also quantitatively determined in most samples. Finally, lead, cadmium and cobalt were not detected in the samples. The proposed method is likely to be applicable to the analysis of other similar complex food products.

Author Contributions

Conceptualization, G.A.Z.; methodology, N.M., G.A.Z.; Experimental work, N.M.; writing—original draft preparation, N.M.; writing—review and editing, G.A.Z.; supervision, G.A.Z. All authors have read and agreed to the published version of the manuscript.

Funding

This research received no external funding.

Conflicts of Interest

The authors declare no conflict of interest.

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Table 1. Recorded atomic emission lines for each element.
Table 1. Recorded atomic emission lines for each element.
ElementAtomic Emission Lines (nm)
Barium233.527230.425
Cadmium226.502214.440
Copper324.752224.700
Nickel232.003221.648
Lead217.000220.353
Zinc213.857202.548
Calcium317.933396.847
Manganese257.610259.372
Magnesium279.077280.271
Aluminum308.215237.313
Iron238.204239.562
Chromium283.563357.869
Cobalt228.616238.892
Table 2. Dissolution tests for the digestion of snack samples.
Table 2. Dissolution tests for the digestion of snack samples.
Sample Mass (mg)Digestion MixtureDigestion ProcessDigestion Time (min)Remark
3003 mL deionized H2OOpen vessel, Boiling, 100 °C20Not dissolved
3005 mL deionized H2OOpen vessel, Boiling, 100 °C20Not dissolved
3003 mL conc. HNO3Open vessel, Boiling, 120 °C5Not dissolved
3005 mL conc. HNO3Open vessel, Boiling, 100 °C5Not dissolved
3003 mL conc. HNO3Autoclave digestion, 80 °C30Not dissolved
3005 mL conc. HNO3Autoclave digestion, 80 °C30Not dissolved
3003 mL conc. HNO3Autoclave digestion, 100 °C60Not dissolved
3005 mL conc. HNO3Autoclave digestion, 100 °C60Not dissolved
3003 mL conc. HNO3Autoclave digestion, 120 °C75Slight sedimentation
3005 mL conc. HNO3Autoclave digestion, 120 °C75Complete dissolution
5005 mL conc. HNO3Autoclave digestion, 120 °C75Slight sedimentation
Table 3. Calibration curves, linear range, limits of detection (LODs) and limits of quantification (LOQs) of the developed inductively coupled plasma atomic emission spectroscopy (ICP-AES) method.
Table 3. Calibration curves, linear range, limits of detection (LODs) and limits of quantification (LOQs) of the developed inductively coupled plasma atomic emission spectroscopy (ICP-AES) method.
ElementEmission Line
(nm)
Sloper2LOD
(μg g−1)
LOQ
(μg g−1)
Upper Limit of Linear Range
(μg mL−1)
Ba230.4251783.70.99990.250.834000
Cd226.5021266.60.99991.334.424000
Cu324.752726550.99991.003.304000
Fe238.2043042.10.99991.183.944000
Pb217.00095.5120.99993.7512.54000
Mn257.610314740.99990.602.004000
Ni232.003532.790.99990.250.834000
Zn213.8571312.30.99991.113.334000
Al237589.90.99980.240.824000
Cr357.869456710.99980.180.604000
Co238.89217890.99981.254.174000
Ca396.84720010030.99991.254.17800
Mg280.271587600.99990.581.95800
Table 4. Relative recoveries and RSD% values for Ba, Cd, Cu, Fe, Pb, Mn and Ni for the analysis of spiked savory snack samples.
Table 4. Relative recoveries and RSD% values for Ba, Cd, Cu, Fe, Pb, Mn and Ni for the analysis of spiked savory snack samples.
SampleAdded
(μg g−1)
BaCdCuFePbMnNi
Found
(μg g−1)
R%RSD%Found
(μg g−1)
R%RSD%Found
(μg g−1)
R%RSD%Found
(μg g−1)
R%RSD%Found
(μg g−1)
R%RSD%Found
(μg g−1)
R%RSD%Found
(μg g−1)
R%RSD%
SFC-301.1 ± 0.1-9.1<LOD--3.7 ± 0.1-2.712.2 ± 0.5-4.1<LOD--<LOD--<LOD--
5047.1 ± 2.092.04.254.1 ± 0.7108.31.354.4 ± 1.4101.42.661.9 ± 1.099.51.647.4 ± 0.894.91.751.5 ± 0.6103.11.259.0 ± 0.6118.01.0
100103.7 ± 14.0102.613.5102.1 ± 12102.111.8117.7 ± 12114.010.2123.0 ± 1.0110.80.893.0 ± 4.093.04.399.0 ± 12.099.012.3116.2 ± 10116.28.6
PC-302.3 ± 0.1-6.1<LOD--4.3 ± 0.3-7.017.1 ± 1.3-7.6<LOD--2.1 ± 0.2-9.5<LOD--
5049.6 ± 6.094.512.147.0 ± 4.3101.49.158.8 ± 4.991.88.373.6 ± 5.0113.06.852.5 ± 0.6105.41.157.0 ± 3.2109.75.649.1 ± 1.398.22.6
100100.3 ± 398.03.099.0 ± 3.099.03.0119.6 ± 7.1115.35.9135.0 ± 4.0117.93.0117.0 ± 3.0117.02.698.3 ± 9.096.29.2115.0 ± 4.0115.03.5
P-101.3 ± 0.1-7.7<LOD--D 1--25.4 ± 1.5-5.9<LOD--2.3 ± 0.1-4.3<LOD--
5045.1 ± 0.787.71.651.3 ± 0.2102.60.448.2 ± 0.196.40.272.0 ± 0.793.21.049.1 ± 0.198.30.251.3 ± 0.198.00.251.1 ± 0.7102.21.4
10098.0 ± 1.196.71.197.0 ± 2.097.02.1107.0 ± 2.0107.01.9138.4 ± 2.0113.01.4108.6 ± 9.0108.68.3100.3 ± 1.098.01.0100.0 ± 3.0100.03.0
CR-10<LOD--<LOD--D--17.1 ± 1.6-9.4<LOD--D--D--
5043.7 ± 0.987.32.151.3 ± 0.6102.61.251.5 ± 4.8103.09.363.0 ± 0.291.80.348.1 ± 0.696.11.249.0 ± 4.698.09.446.3 ± 0.192.60.2
10083.0 ± 4.083.04.884.0 ± 2.184.12.5101.0 ± 2.0101.02.0119.1 ± 2.0102.01.780.0 ± 4.080.05.189.1 ± 3.089.13.499.1 ± 3.099.13.0
1 D: Detected.
Table 5. Relative recoveries and RSD% values for Zn, Al, Cr, Co, Ca and Mg for the analysis of spiked savory snack samples.
Table 5. Relative recoveries and RSD% values for Zn, Al, Cr, Co, Ca and Mg for the analysis of spiked savory snack samples.
SampleAdded
(μg g−1)
ZnAlCrCoCaMg
Found
(μg g−1)
R%RSD%Found
(μg g−1)
R%RSD%Found
(μg g−1)
R%RSD%Found
(μg g−1)
R%RSD%Found
(μg g−1)
R%RSD%Found
(μg g−1)
R%RSD%
SFC-309.1 ± 0.9-9.911.2 ± 1.1-9.8<LOD--<LOD--754.1 ± 3.7-0.5351.9 ± 20.4-5.8
5065.4 ± 2.5112.63.867.5 ± 1.099.31.549.6 ± 0.199.30.253.9 ± 7.1107.813.2791.9 ± 2093.62.5411.0 ± 22.2118.15.4
100124.1 ± 13.0115.010.5115.0 ± 2.0103.81.7109.3 ± 1.1109.31.0106.0 ± 14.0106.013.2847.1 ± 3093.03.5438.9 ± 2087.04.6
PC-3012.8 ± 1.3-10.2<LOD--D 1--<LOD--53.0 ± 4.3-3.5645.0 ± 63.6-9.9
5055.6 ± 4.685.78.355.6 ± 5.199.49.249.7 ± 1.199.42.255.7 ± 2.5111.44.597.3 ± 5.088.65.2699.7 ± 65.0109.59.3
100131.7 ± 1.9118.91.4105.0 ± 5.0105.04.7119.3 ± 1.1119.30.998.3 ± 4.298.34.3137.3 ± 584.03.6762.1 ± 50.3117.06.6
P-109.7 ± 0.6-6.28.6 ± 0.5-5.81.3 ± 0.1-7.7<LOD--115.1 ± 6.9-6.01295.3 ± 85.6-6.6
5055.2 ± 1.190.92.049.6 ± 1.499.12.850.9 ± 0.399.10.644.4 ± 0.488.50.9160.891.33.11345.8 ± 90.0100.96.7
100115.7 ± 2.0106.01.7109.5 ± 4.3100.93.9107.3 ± 2.0106.01.996.2 ± 4.396.24.7205.1 ± 1890.08.81404.4 ± 12.4109.00.9
CR-1013.4 ± 0.7-5.224.2 ± 0.1-0.40.95 ± 0.03-3.2<LOD--332.6 ± 4.3-1.31216.7 ± 75.2-6.2
5043.8 ± 2.187.54.879.2 ± 3.598.24.450.1 ± 0.598.21.050.7 ± 3.1101.56.1376.1 ± 5086.913.31268.1+75.0102.75.9
10099.1 ± 10.085.710.0126.2 ± 3.0102.02.4103.0 ± 4.0102.03.987.5 ± 3.287.53.7419.6 ± 3087.07.11300.0 ± 13.183.01.0
1 D: Detected.
Table 6. Metal concentrations in commercial snack samples.
Table 6. Metal concentrations in commercial snack samples.
SampleBa
(μg g−1)
Cd
(μg g−1)
Cu
(μg g−1)
Fe
(μg g−1)
Pb
(μg g−1)
Mn
(μg g−1)
Ni
(μg g−1)
Zn
(μg g−1)
Cr
(μg g−1)
Co
(μg g−1)
Ca
(μg g−1)
Mg
(μg g−1)
Al
(μg g−1)
SFC-10.83 ± 0.01<LOD7.7 ± 0.124.0 ± 2.3<LOD<LOD<LOD14.1 ± 0.71.1 ± 0.1<LOD767.4 ± 4.7521.1 ± 29.68.2 ± 0.4
SFC-2<LOD<LOD5.8 ± 0.3305.0 ± 7.7<LOD<LOD2.10 ± 0.15.9 ± 0.1D<LOD453.0 ± 2.1317.8 ± 14.554.2 ± 3.3
SFC-31.07 ± 0.09<LOD3.7 ± 0.112.2 ± 0.5<LOD<LOD<LOD9.1 ± 0.9D<LOD754.1 ± 3.7351.9 ± 20.411.2 ± 1.1
SFC-4<LOD<LOD3.7 ± 0.213.9 ± 0.4<LOD<LOD<LOD8.2 ± 0.5D<LOD321.7 ± 17.9465.7 ± 17.75.6 ± 0.9
SFC-5<LOD<LODD 16.8 ± 0.1<LOD<LOD<LOD8.1 ± 0.5D<LOD550.3 ± 37.9502.6 ± 18.2<LOD
SFC-6<LOD<LODD5.9 ± 0.1<LOD<LODDDD<LOD184.9 ± 7.2242.5 ± 22.0<LOD
SFC-7<LOD<LOD5.8 ± 0.39.5 ± 0.7<LOD6.0 ± 0,1<LOD15.9 ± 0.2D<LOD212.9 ± 18.31060.0 ± 84.9<LOD
SFC-82.15 ± 0.07<LOD4.8 ± 0.39.9 ± 0.2<LOD3.8 ± 0.2<LOD13.3 ± 1.1<LOD<LOD161.0 ± 1.4872.9 ± 38.49.6 ± 0.8
SFC-90.85 ± 0.07<LODD11.1 ± 0.2<LOD<LOD<LOD4.8 ± 0.4<LOD<LOD185.4 ± 6.5604.3 ± 3.612.4 ± 0.2
PC-1<LOD<LODD15.2 ± 0.2<LOD<LOD<LOD12.6 ± 0.1D<LOD170.8 ± 1.1927.9 ± 40.4<LOD
PC-22.05 ± 0.07<LODD20.5 ± 1.2<LOD1.9 ± 0.1<LOD19.4 ± 0.10.62 ± 0.06<LOD71.9 ± 2.71225.0 ± 35.44.6 ± 0.1
PC-32.30 ± 0.14<LOD4.3 ± 0.317.1 ± 1.3<LOD2.1 ± 0.2<LOD12.8 ± 1.3D<LOD53.0 ± 4.3645.0 ± 63.6<LOD
P-11.32 ± 0.11<LODD25.4 ± 1.5<LOD2.3 ± 0.1<LOD9.7 ± 0.61.26 ± 0.1<LOD115.1 ± 6.91295.3 ± 85.68.6 ± 0.5
P-20.83 ± 0.02<LOD3.3 ± 0.216.3 ± 0.6<LODD<LOD9.1 ± 0.40.60 ± 0.06<LOD201.3 ± 1.8666.6 ± 37.611.3 ± 0.2
P-3<LOD<LOD<LOD11.7 ± 0.1<LOD<LOD0.91 ± 0.014.0 ± 0.1D<LOD31.0 ± 4.2230.0 ± 14.116.3 ± 1.5
P-4<LOD<LODD11.3 ± 0.6<LOD<LOD<LOD6.2 ± 0.6D<LOD216.2 ± 14.7759.1 ± 51.59.8 ± 0.3
P-5<LOD<LOD<LOD13.7 ± 1.3<LOD<LOD<LODDD<LOD298.3 ± 2.3767.7 ± 14.76.2 ± 0.1
P-6<LOD<LODD11.2 ± 0.4<LOD<LODD 3.4 ± 0.2<LOD<LOD360.1 ± 5.3690.0 ± 14.1D
PRC-1<LOD<LOD<LOD12.6 ± 1.2<LOD<LOD1.8 ± 0.16.5 ± 0.2<LOD<LOD153.1 ± 4.91556.3 ± 56.97.2 ± 0.3
CR-1<LOD<LODD17.1 ± 1.6<LODDD13.4 ± 0.70.95 ± 0.03<LOD332.6 ± 4.31216.7 ± 75.224.2 ± 0.1
CR-21.25 ± 0.07<LOD<LOD12.0 ± 0.3<LODD2.1 ± 0.13.3 ± 0.11.11 ± 0.02<LOD272.1 ± 24.8255.5 ± 6.28.1 ± 0.3
1 D: Detected.
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Manousi, N.; Zachariadis, G.A. Development and Application of an ICP-AES Method for the Determination of Nutrient and Toxic Elements in Savory Snack Products after Autoclave Dissolution. Separations 2020, 7, 66. https://0-doi-org.brum.beds.ac.uk/10.3390/separations7040066

AMA Style

Manousi N, Zachariadis GA. Development and Application of an ICP-AES Method for the Determination of Nutrient and Toxic Elements in Savory Snack Products after Autoclave Dissolution. Separations. 2020; 7(4):66. https://0-doi-org.brum.beds.ac.uk/10.3390/separations7040066

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Manousi, Natalia, and George A. Zachariadis. 2020. "Development and Application of an ICP-AES Method for the Determination of Nutrient and Toxic Elements in Savory Snack Products after Autoclave Dissolution" Separations 7, no. 4: 66. https://0-doi-org.brum.beds.ac.uk/10.3390/separations7040066

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