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HYDROFLUORIC ACID SEMI C28-0705 © SEMI 1978, 2005 3 8.6.3 Analysis 8.6.3.1 Using the acid sample and reagent blank, analyze all specified elem ents by plasma emission spectroscopy or prefer ably by ICP-MS . 9 Grade 2 Pro…

SEMI C28-0705 © SEMI 1997, 2005 HYDROFLUORIC ACID 2
8.1 Assay — Accurately weigh 1.4–1.5 mL of sample in polyethylene weighing bottle, sample, stopper
immediately, and reweigh. To 50 mL of water in a plastic vessel, add the sample (loosen the stopper of the
polyethylene bottle, and add both the container and the stopper with the sample). Add 0.1 mL of phenolphthalein
indicator solution, and titrate with standardized 1 N sodium hydroxide to a slight, pink color.
%Assay
mL
N
of NaOH
2.00
1
Weight of sample g
8.1.1 Alternately, potentiometric end point detection can be used.
8.2 Chloride — Add 1.7 mL (2.0 g) of sample to 45 mL of water. Filter, if necessary, through a chloride-free filter.
Add 1 mL of nitric acid and 1 mL of silver nitrate reagent solution. Any turbidity produced should be no greater
than that produced when 0.01 mg of chloride ion (Cl) is treated as the sample.
8.3 Nitrate — Weigh 3.3 g of sample in a white plastic 50 mL beaker and dilute with 4.5 mL of water. To another
50 mL plastic beaker, add 6.5 mL of water and 1 mL of standard nitrate solution containing 0.01 mg of nitrate (NO
3
)
per mL. To each solution, add 2.5 mL of brucine sulfate reagent solution and cautiously add with stirring 20 mL of
sulfuric acid. Allow to stand for 10 minutes. The yellow color in the sample solution should be no greater than that
in the standard solution.
8.4 Phosphate — Evaporate 9 mL (10 g) of sample to dryness in a platinum or other suitable dish on a steam bath
in a hood. Dissolve the residue in 25 mL of 0.5 N sulfuric acid. Add 1 mL of ammonium molybdate reagent solution
and 1 mL of p-(methylamino)phenol sulfate reagent solution. Allow to stand for 2 hours at room temperature. Any
blue color should be no greater than that produced when 0.01 mg of phosphate ion (PO
4
) is treated like the sample.
8.5 Sulfate and Sulfite (as SO
4
) — To 18 mL (20 g) of sample in a platinum or other suitable evaporating dish, add
about 10 mg of sodium carbonate and 1 mL of 30 hydrogen peroxide. Evaporate to dryness on a steam bath in a
hood, wash down the sides of the dish with a small volume of water, and add 3 mL of perchloric acid. Evaporate to
about 1 mL, dilute with about 15 mL of water, and add 0.01 mL of phenolphthalein indicator solution. Neutralize
with ammonium hydroxide, dilute with water to 20 mL, and add 2 mL of dilute hydrochloric acid (1 + 19) and 2 mL
of barium chloride reagent solution. Any turbidity should not exceed that produced by 0.1 mg of sulfate ion (SO
4
) in
an equal volume of solution containing the quantities of reagents used in the test. Compare 10 minutes after adding
the barium chloride to the sample and standard solutions.
NOTE 2: For anion determination, alternate method based upon ion chromatography may be used, see ¶10.2.
8.6 Trace Metal Analysis — The following method has given satisfactory results in determining trace metal
impurities at the value specified for each of the following trace metals: aluminum (Al), antimony (Sb), arsenic (As),
barium (Ba), boron (B), cadmium, (Cd), calcium (Ca), chromium (Cr), copper (Cu), iron (Fe), lead (Pb), lithium
(Li), magnesium (Mg), manganese (Mn), nickel (Ni), potassium (K), sodium (Na), tin (Sn), titanium (Ti), vanadium
(V) and zinc (Zn). An alternate method is described in ¶9.2. Any other alternate methods may be used as long as
method validation according to SEMI C1 can be demonstrated.
8.6.1 Special Reagents
8.6.1.1 Nitric Acid, Ultra Pure — Use nitric acid specified for ultra low metal ion content.
8.6.1.2 2% Nitric Acid Solution — Dilute 20 mL of ultra pure nitric acid to 1 L using water meeting the criteria for
Type E1.1 in ASTM D5127.
8.6.2 Sample Preparation
8.6.2.1 In a clean environment, place 250 g of sample in a PTFE evaporating dish. Slowly evaporate on a hot plate,
avoiding loss of sample by effervescence or spattering until approximately 2 mL of liquid remains.
NOTE 3: Evaporation typically requires 2 1/2 to 4 hours.
Cool. Add 1 mL of ultra pure, 70% nitric acid. While maintaining volume, carefully warm several minutes to
dissolve any residue. Cool. Transfer quantitatively to a 50 mL volumetric flask using 2% nitric acid for rinsing and
dilution to volume. Run a reagent blank.

HYDROFLUORIC ACID SEMI C28-0705 © SEMI 1978, 2005 3
8.6.3 Analysis
8.6.3.1 Using the acid sample and reagent blank, analyze all specified elements by plasma emission spectroscopy or
preferably by ICP-MS.
9 Grade 2 Procedures
NOTE 4: Each laboratory is responsible for verifying the validity of the method within its own operation.
9.1 Non-Metal Impurities — See §8, which contains procedures for the following tests:
Assay,
Chloride,
Nitrate,
Phosphate, and
Sulfate and Sulfite (as SO
4
).
9.2 Trace Metals Analysis
9.2.1 The following method has given satisfactory results in determining trace metal impurities at the value
specified for each of the following trace metals: aluminum (Al), antimony (Sb), arsenic (As), barium (Ba), boron
(B), cadmium (Cd), calcium (Ca), chromium (Cr), copper (Cu), iron (Fe), lead (Pb), lithium (Li), magnesium (Mg),
manganese (Mn), nickel (Ni), potassium (K), sodium (Na), tin (Sn), titanium (Ti), vanadium (V), and zinc (Zn).
Alternate method can be used as long as method validation according to SEMI C1 can be demonstrated.
9.2.2 Special Reagents
9.2.2.1 Hydrofluoric Acid, Ultra Pure — Use hydrofluoric acid specified for low metal ion content.
9.2.2.2 4.9% Hydrofluoric Acid Solution — Dilute 20 g of ultrapure hydrofluoric acid to 200 g using water meeting
the criteria for Type E1.1 in ASTM D5127.
9.2.2.3 Water — The water used for all the dilution, calibration and standards should meet at a minimum the criteria
for Type E1.1 in ASTM D5127 in regard to cation analysis.
9.2.2.4 Indium Internal Standard — Make up a internal standard solution to a concentration of 20 g/mL (ppm)
from the appropriate concentrated indium standard solution.
9.2.3 Sample Preparation — In a clean environment, place 2.00 g of sample into a tared FEP bottle (30 mL), dilute
with Type E1.1 water to a final weight of 20.0 g. Add 20 L of the indium internal standard solution. Run a reagent
blank.
9.2.4 Analysis
9.2.4.1 Using the prepared solutions and blanks, analyze all the specified elements by inductively coupled plasma
mass spectrometry (ICP/MS). For calibration, the standards are made up with the 4.9% hydrofluoric acid solution
and the indium internal standard such that the final concentration is 20 ng/g of indium.
NOTE 5: Analysis of dilute hydrofluoric acid requires the use of special hydrofluoric acid resistant sample introduction systems
for inductively coupled plasma mass spectrometry. These systems are available from most instrument suppliers.
NOTE 6: Analysis of dilute hydrofluoric acid can produce rapid corrosion of nickel cones commonly used in inductively
coupled plasma mass spectrometry, platinum cones should be considered as alternative when performing this analysis.
10 Grade 3 Procedures
10.1 Assay — See ¶8.1
10.2 Chloride, Nitrate, Sulfate, Phosphate
10.2.1 The above mentioned anions can be determined by ion chromatography using a two dimensional approach.
For a detailed procedure, see for example Dionex Technical Note 45. Better results are obtained when using an
IonPac ICE-AS1 column instead of the IonPac ICE-AS6 recommended in the TN45. Calibration is preferably done

SEMI C28-0705 © SEMI 1997, 2005 HYDROFLUORIC ACID 4
by the method of standard addition. Alternate method can be used as long as method validation according to SEMI
C1 can be demonstrated.
10.3 Trace Metal Analysis — The following method has given satisfactory results in determining trace metal
impurities at the value specified for each of the following trace metals: aluminum (Al), antimony (Sb), arsenic (As),
barium (Ba), boron (B), cadmium (Cd), calcium (Ca), chromium (Cr), copper (Cu), iron (Fe), lead (Pb), lithium (Li),
magnesium (Mg), manganese (Mn), nickel (Ni), potassium (K), sodium (Na), tin (Sn), titanium (Ti), vanadium (V),
and zinc (Zn). Alternate method can be used as long as method validation according to SEMI C1 can be
demonstrated.
10.3.1 Special Reagents
10.3.1.1 Nitric Acid, Ultra Pure — Use nitric acid specified for ultra low metal ion content.
10.3.1.2 3 % Nitric Acid Solution — In a clean environment, place 15 g of Ultra Pure Nitric Acid ¶10.3.1.1 into a
tared clean 500 ml FEP bottle. Dilute to a final weight of 500 g using ultrapure water ¶10.3.1.3.
10.3.1.3 Water — The water used for all the dilutions, calibrations and standards should meet at a minimum the
criteria for Type E1.2 in ASTM D5127 in regard to cation analysis.
10.3.2 Sample Preparation
10.3.2.1 In a clean environment, place 20 g of sample into a tared clean 120 ml FEP bottle. Dilute to a final weight
of 100 g with the 3 % Nitric Acid Solution ¶10.3.1.2.
10.3.3 Analysis
10.3.3.1 Using the prepared solutions, analyze all the specified elements by inductively coupled plasma mass
spectrometry (ICP-MS). For calibration, blank and standards are made up with the 3 % Nitric Acid Solution
¶10.3.1.2.
NOTE 7: Analysis of dilute hydrofluoric acid requires the use of special hydrofluoric acid resistant sample introduction systems
for inductively coupled plasma mass spectrometry. These systems are available from most instrument suppliers.
NOTE 8: Analysis of dilute hydrofluoric acid can produce rapid corrosion of nickel cones commonly used in inductively
coupled plasma mass spectrometry, platinum cones should be considered as alternative when performing this analysis.
NOTE 9: The analytical methodology described in ¶10.3 has been validated using a “Reaction / Collision cell” type ICP-MS.
Other instrument type can be used as long as method validation according to SEMI C1 can be demonstrated.
11 Grade 4 Procedures
11.1 Assay — See ¶8.1.
11.2 Chloride, Nitrate, Sulfate, Phosphate — See ¶10.2.
11.3 Trace Metal Analysis — See ¶10.3.
12 Grade 5 Procedures
12.1 This section does not apply to this chemical.
13 Tier A Procedures
13.1 This section does not apply to this chemical.
14 Tier B Procedures
14.1 This section does not apply to this chemical
15 Tier C Procedures
15.1 This section does not apply to this chemical