1 / 26

Lecture 9: Ocean Carbonate Chemistry: Carbonate Reactions Reactions and equilibrium constants (K)

Lecture 9: Ocean Carbonate Chemistry: Carbonate Reactions Reactions and equilibrium constants (K) Solutions – numerical graphical What can you measure?. Theme 1 (continuation) – Interior Ocean Carbon Cycle Theme 2 – Ocean Acidification (man ’ s alteration of the ocean).

Download Presentation

Lecture 9: Ocean Carbonate Chemistry: Carbonate Reactions Reactions and equilibrium constants (K)

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. Lecture 9: Ocean Carbonate Chemistry: Carbonate Reactions Reactions and equilibrium constants (K) Solutions – numerical graphical What can you measure? Theme 1 (continuation) – Interior Ocean Carbon Cycle Theme 2 – Ocean Acidification (man’s alteration of the ocean)

  2. Sarmiento and Gruber (2002) Sinks for Anthropogenic Carbon Physics Today August 2002 30-36 1Pg = 1015g

  3. Oh Oh Chemistry!

  4. Weathering and River Flux Atmospheric CO2 is converted to HCO3- in rivers and transported to the ocean Examples: Weathering of CaCO3 CaCO3(s) + CO2(g) + H2O = Ca2+ + 2 HCO3- 1 + 12 Weathering of alumino-silicate minerals to clay minerals. silicate minerals + CO2(g) + H2O == clay minerals + HCO3- + 2 H4SiO4 + cation 112 A specific example of orthoclase to kaolinite KAlSi3O8(s) + CO2(g) + 11/2H2O = 1/2 Al2Si2O5(OH)4(s) + K+ + HCO3- + 2H4SiO4 Calculate Global Flux:: Global River Flux = River Flow x global average HCO3 concentration Global River Flux = 3.7 x 1016 l y-1 x 0.9 mM = 33.3 x 1012 mol y-1 x 12 g/mol = 0.4 x 1015 g y-1 = 0.4 Pg y-1 S&G (2002) give 0.8 Pg y-1 with 0.4 Pg y-1 from weathering

  5. CO2 + rocks = HCO3- + clays CO2 River Flux Gas Exchange Atm Ocn CO2→ H2CO3→ HCO3- → CO32- Upwelling/ Mixing + H2O = CH2O + O2 + Ca2+ = CaCO3 CO2 BorgC BCaCO3 Biological Pump Controls: pH of ocean Sediment diagenesis HCO3 uptake – Cassar et al 2004 GBC

  6. CO2 reacts with H2O to make H2CO3 CO2(g) + H2O = H2CO3 K’H H2CO3 is a weak acid H2CO3 = H+ + HCO3- K’1 HCO3- = H+ + CO32- K’2 H2O is also a weak acid H2O = H+ + OH- K’W Species n = 6 CO2(g) H2CO3= carbonic acid HCO3- = bicarbonate CO32- = carbonate H+ = proton or hydrogen ion OH- = hydroxyl

  7. Equilibrium Constants: 4 equilibrium constants in seawater = K’ = f (S,T,P) These are expressed as K'. 1. CO2(g) + H2O = H2CO3* (Henry's Law) K’H = [H2CO3*] / PCO2 (note that gas concentrations are given as partial pressure; e.g. atmospheric PCO2 = 10-3.5) 2. H2CO3* = H+ + HCO3- K’1 = [HCO3-][H+] / [H2CO3*] 3. HCO3- = H+ + CO32- K’2= [H+][CO32-] / [HCO3-] 4. H2O = H+ + OH- K’w = [H+][OH-] [ ] Concentration

  8. Values of K’ The values here are for S = 35, T = 25C and P = 1 atm. Constant Apparent Seawater Constant (K')Freshwater Constants (K) K’H 10-1.53 10-1.5 K’1 10-6.00 10-6.3 K’2 10-9.10 10-10.3 K’w 10-13.9 10-14.0 K’ vary with T, S and P See Appendix 4.2 in Emerson and Hedges

  9. pH H+ from pH = -log H+ at pH = 6; [H+] = 10-6 OH- from OH- = KW / H+ at pH = 6; [OH-] = 10-8 Total CO2 (SCO2 or CT ) – Dissolved Inorganic carbon (DIC) DIC = [H2CO3] + [HCO3-] + [CO32-]

  10. Example: If you add reactions what is the K for the new reaction? H2CO3 = H+ + HCO3- K1 = 10-6.0 plus HCO3- = H+ + CO32- K2 = 10-9.1 ------------------------------------------------ H2CO3 = 2H+ + CO32- K12 = 10-15.1Q. At what pH does H2CO3 = CO32-? Example: Say we want the K for the reaction CO32- + H2CO3 = 2 HCO3- Then we have to reverse one of the reactions. Its K will change sign as well!! So: H2CO3 = H+ + HCO3- K = 10-6.0 H+ + CO32- = HCO3- K = 10+9.1 -------------------------------------------------------------------- H2CO3 + CO32- = 2HCO3- K = 103.1 

  11. Calculations: Graphical Approach Algebraic Approach

  12. Construct a Distribution Diagram for H2CO3 – Closed System a. First specify the total CO2 (e.g. CT = 2.0 x 10-3 = 10-2.7 M) b. Locate CT on the graph and draw a horizontal line for that value. c. Locate the two system points on that line where pH = pK1 and pH = pK2. d. Make the crossover point, which is 0.3 log units less than CT e. Sketch the lines for the species (not open to the atmosphere)

  13. Table of acids in seawater pK = -logK ElementReactionmol kg-1-logCpK' H2O H2O = H+ + OH-13.9 C H2CO3 = HCO3- + H+ 2.4 x 10-3 2.66.0 HCO3- = CO32- + H+9.1 B B(OH)3 + H2O = B(OH)4- + H+ 4.25 x 10-4 3.378.7 Mg Mg2+ + H2O = MgOH+ + H+ 5.32 x 10-2 1.2712.5 Si H4SiO4 = SiO(OH)3- + H+ 1.5 x 10-4 3.82 9.4 P H3PO4 = H2PO4- + H+ 3.0 x 10-6 5.52 1.6 H2PO4- = HPO 2- + H+ 6.0 HPO42- = PO43- + H+ 8.6 S(VI) HSO4- = SO42- + H+ 2.82 x 10-2 1.55 1.5 F HF = F- + H+ 5.2 x 10-5 4.28 2.5 Ca Ca2+ + H2O = CaOH+ + H+ 1.03 x 10-2 1.9913.0 And in anoxic systems N NH4+ = NH3 + H+ 10 x 10-6 5.0 9.5 S(-II) H2S = HS- + H+ 10 x 10-6 5.0 7.0 HS- = S2- + H+ 13.4 (e.g. K’ = 10-13.9) Q. Which is larger? pK = 6.0 or 9.1 Q. If K is larger, what does that mean?

  14. Carbonic Acid – 6 unknowns Carbonic acid is the classic example of a diprotic acid (it has two H+) and it can have a gaseous form. It also can be expressed as open or closed to the atmosphere (or a gas phase) There are 6 species we need to solve for: CO2(g) Carbon Dioxide Gas H2CO3* Carbonic Acid (H2CO3* = CO2 (aq) + H2CO3) HCO3- Bicarbonate CO32- Carbonate H+ Proton OH- Hydroxide To solve for six unknowns we need six equations Four of the equations are equilibrium constants!

  15. What can you measure? • We can not measure these species directly. What we can measure are: • pH • pH is defined in terms of the activity or concentration of H+. Depends on calibration. • Written as pH = -log (H+) • b) Total CO2 or DIC • DIC = CT = [H2CO3] + [HCO3-] + [CO32-] • c) Alkalinity (defined by the proton balance for a pure solution of CO2) • Alkalinity = [HCO3-] + 2[CO32-] + [OH-] - [H+] + [B(OH)4-] + other bases present (e.g. DOC) • Use Carbonate Alkalinity for calculations (AC). • The alkalinity is defined as the amount of acid necessary to titrate all the weak bases in • seawater (e.g. HCO3-, CO32-, B(OH)4-, NH3) to the alkalinity endpoint which occurs • where (H+) = (HCO3-) (see graph). This is at about pH = 4.3. • Filter samples. Cells contribute alkalinity. • d) PCO2 • The PCO2 in a sample is the PCO2 that a water would have if it were in • equilibrium with a gas phase.

  16. Carbonate System Calculations pH and CT Alkalinity and PCO2 A useful shorthand is the alpha notation, where the alpha (a) express the fraction each carbonate species is of the total DIC. These avalues are a function ofpH only for a given set of acidity constants. Thus: H2CO3 = aoCT HCO3- = a1 CT CO32- = a2 CT The derivations of the equations are as follows: ao = H2CO3 / CT = H2CO3 / (H2CO3 + HCO3 + CO3) = 1 / ( 1+ HCO3 / H2CO3 + CO3/H2CO3) = 1 / ( 1 + K1/H + K1K2/H2) = H2 / ( H2 + HK1 + K1K2) The values for a1 and a2 can be derived in a similar manner. a1 = HK1 / (H2 + H K1 + K1K2) a2 = K1K2 / ( H2 + H K1 + K1K2) For example: Assume pH = 8, CT = 10-3, pK1' = 6.0 and pK2' = 9.0 [H2CO3*] = 10-5mol kg-1 (note the answer is in concentration because we used K') [HCO3-] = 10-3mol kg-1 [CO32-] = 10-4mol kg-1 Alk = HCO3 + 2 CO3 + OH - H For this problem neglect H and OH (a good assumption ), then: Alk = CTa1 + 2 CTa2 Alk = CT (a1 + 2a2) We can use this equation if we have a closed system and we know 2 of the 3 variables (Alk, CT or pH). For an open system we can express CT in terms of PCO2 as follows: We know that H2CO3* = CT ao ( you can also use this equation if you know pH and PCO2) But H2CO3 can be expressed in terms of the Henry's Law: KH PCO2 = CTao So CT = KH PCO2 /ao Now: Alk = (KH PCO2 / ao ) ( a1 + 2a2) Alk = KH PCO2 ( (a1 + 2 a2 ) /ao)) Alk = KH PCO2 ( (HK1+ 2 K1K2)/ H2 ) Assume: Alk = 10-3 PCO2 = 10-3.5 pK1' = 6.0 pK2' = 9.0 Then: pH = 8.3

  17. CaCO3 solubility calculations CaCO3 = Ca2+ + CO32- K’s0 (calcite) = 4.26 x 10-7 = 10-6.37 K’s0(aragonite) = 6.46 x 10-7 = 10-6.19 Ion Concentration Product = ICP = [Ca2+][CO32-] or CaCO3 + CO2(g) + H2O = Ca2+ + 2 HCO3- Ion Concentration Product = ICP = [Ca2+][HCO3-]2 / CO2(g) Degree of Saturation (Ω): Omega = Ω = ICP / K’s0 If water at equilibrium (saturation) Ω = 1 If water oversaturated Ω > 1 CaCO3precipitates There are more products than there should be If water undersaturatedΩ <1 CaCO3dissolves There are not enough products than there should be

  18. What controls the pH of seawater? pH and PCO2 are not conservative. DIC and Alk are capacity factors. pH in seawater is controlled by alkalinity and DIC and can be calculated from these two parameters as shown below. Alk HCO3- + 2 CO32- Alk CTa1 + 2 CTa2 = CT (a1 + 2a2 ) Alk = CT (HK1' + 2 K1' K2' ) / (H2 + H K1' + K1'K2') Rearranging, we can calculate pH from Alk and CT(use the quadratic equation) (H+) = -K1' (Alk-CT) + [(K1')2 (Alk-CT)2 - 4 Alk K1' K2' (Alk - CT)] 0.5/ 2 Alk So the question boils down to what controls alkalinity and total CO2. Internal variations of pH in the ocean and controlled by internal variations in DIC and alkalinity which are controlled by photosynthesis, respiration and CaCO3 dissolution and precipitation. The long term controls on alkalinity and DIC are the balance between the sources and sinks and these are the weathering (sources) and burial (sinks) of silicate and carbonate rocks and organic matter.

  19. For laptops For iPhone Program Developed for CO2 System Calculations CO2calc: A User-Friendly Seawater Carbon Calculator for Windows, Mac OS X, and iOS (iPhone) By L.L. Robbins, M.E. Hansen, J.A. Kleypas, and S.C. Meylan http://cdiac.ornl.gov/oceans/co2rprt.html

  20. Guam Shinjo et al Marine Geology

  21. Shinjo et al (2013) Marine Geology

  22. The Proton Balance The balance of species that have excess protons to species deficient in protons relative to a stated reference species. Reference species Proton Balance For H2CO3: H+ = HCO3- + 2 CO32- + OH- For HCO3-: H+ + H2CO3 = CO32- + OH- For CO32-: H+ + 2 H2CO3 + HCO3- = OH- The proton conditions define three equivalence points on the graph and these are used to define 6 capacity factors for the solution. You can approach each equivalence point from either the acid or base direction. If you add strong acid (e,g, HCl ) it is represented as CA Strong base (e.g. NaOH) is represented as CB. For Example: For a pure solution of H2CO3: CB + H+ = HCO3- + 2 CO32- + OH- + CA Then: CB – CA = HCO3- + 2CO32- + OH- - H+ = Alkalinity CA – CB = H+ - HCO3- + 2CO32- + OH- = H+-Acidity

  23. Open System - Gas Solubility – Henry’s Law The exchange or chemical equilibrium of a gas between gaseous and liquid phases can be written as: A (g) ===== A (aq) At equilibrium we can define K = [A(aq)] / [A(g)] Henry's Law: We can express the gas concentration in terms of partial pressure using the ideal gas law: PV = nRT so that [A(g)] is equal to the number of moles n divided by the volume n/V = [A(g)] = PA / RT where PA is the partial pressure of A Then K = [A(aq)] / PA / RT or [A(aq)] = (K/RT) PA [A(aq)] = KH PA units for K are mol kg-1 atm-1; for PA are atm in mol kg-1 Henry's Law states that the solubility of a gas is proportional its overlying partial pressure.

  24. Example: Gas concentrations in equilibrium with the atmosphere Atmosphere Composition GasMole Fraction in Dry Air (fG) (where fG = moles gas i/total moles) N2 0.78080 O2 0.20952 Ar 9.34 x 10-3 CO2 3.3 x 10-4 GasPiKH (0C , S = 35)Ci (0C, S = 35; P = 1 Atm N2 0.7808 0.80 x 10-3 62.4 x 10-3 mol kg-1 O2 0.2095 1.69 x 10-3 35.4 x 10-3 Ar 0.0093 1.83 x 10-3 0.017 x 10-3 CO2 0.00033 63 x 10-3 0.021 x 10-3

  25. Open System Distributions Assume equilibrium with a constant composition gas phase with PCO2 = 10-3.5

More Related