| Literature DB >> 34135926 |
Marko Popovic1, Mirjana Minceva1.
Abstract
Elemental composition of Gossypium hirsutum L. (cotton),Entities:
Keywords: Gibbs energy; Gossypium (cotton); Sugarcane (Saccharum spp.); bean (Phaseolus vulgaris L.); biothermodynamics; corn (Zea mays L.); phototroph; rice (Oryza sativa L.)
Year: 2021 PMID: 34135926 PMCID: PMC8202407 DOI: 10.3389/fpls.2021.671868
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
Information about the plant samples considered in this research.
| Plant name | Sample origin | Plant part | Experimental enthalpy of combustion | References | |
| Latin | Common | ||||
| Cotton | California | Stalk | Yes | ||
| Asian rice | California | Straw | Yes | ||
| Common bean | Ecuador | Waste 1 | No | ||
| Minas Gerais, Brazil | Waste 2 | No | |||
| Sugarcane | Ghana | Bagasse | Yes | ||
| Corn | Kansas | Leaves | No | ||
| Stems | No | ||||
| Grain | No | ||||
| Roots | No | ||||
| Cobs 1 | No | ||||
| Average | No | ||||
| Ghana | Stalk | Yes | |||
| Cobs 2 | Yes | ||||
| Iowa, United States | Ground stover | No | |||
| Stalk shell | No | ||||
| Stalk pith | No | ||||
| Cob shell | No | ||||
| Whole stover | No | ||||
Elemental composition of the plants considered in this work.
| Plant name | Plant part | n | n | n | n | n | n | n | n | n | n | n | n | n | M |
| Stalk | 1.64 | 0.869 | 0.018 | 0.002 | 27.87 | ||||||||||
| Straw | 1.60 | 0.807 | 0.0044 | 0.0025 | 26.69 | ||||||||||
| Waste 1 | 1.81 | 0.81 | 0.15 | 28.80 | |||||||||||
| Waste 2 | 1.55 | 0.904 | 0.028 | 0.002 | 30.56 | ||||||||||
| Bagasse | 1.54 | 0.8320 | 0.012 | 0.00099 | 27.11 | ||||||||||
| Leaves | 1.69 | 0.80 | 0.027 | 0.0019 | 0.0022 | 0.0110 | 0.0025 | 0.0034 | 0.0008 | 0.0268 | 0.00023 | 0.0004 | 0.0018 | 29.10 | |
| Stems | 1.58 | 0.74 | 0.016 | 0.0008 | 0.0013 | 0.0085 | 0.0018 | 0.0011 | 0.0001 | 0.0040 | 0.00008 | 0.0003 | 0.0017 | 26.98 | |
| Grain | 1.85 | 0.76 | 0.041 | 0.0029 | 0.0012 | 0.0029 | 0.0022 | 0.0002 | 0.0002 | 0.0002 | 0.00018 | 0.0002 | 0.0002 | 26.86 | |
| Roots | 1.61 | 0.77 | 0.026 | 0.0011 | 0.0022 | 0.0035 | 0.0020 | 0.0043 | 0.0103 | 0.0449 | 0.00034 | 0.0026 | 0.0009 | 28.39 | |
| Cobs 1 | 1.66 | 0.75 | 0.026 | 0.0008 | 0.0002 | 0.0031 | 0.0012 | 0.0001 | 0.0005 | 0.0124 | 0.00015 | 0.0001 | 0.0009 | 26.25 | |
| Average | 1.71 | 0.77 | 0.029 | 0.0018 | 0.0015 | 0.0065 | 0.0021 | 0.0016 | 0.0011 | 0.0125 | 0.00018 | 0.0004 | 0.0011 | 27.53 | |
| Stalk | 1.56 | 0.8653 | 0.030 | 0.00834 | 28.16 | ||||||||||
| Cobs 2 | 1.66 | 0.8556 | 0.018 | 0.0021 | 27.73 | ||||||||||
| Ground stover | 1.68 | 0.8080 | 0.0088 | 0.0010 | 26.79 | ||||||||||
| Stalk shell | 1.56 | 0.7170 | 0.0007 | 0.0008 | 25.09 | ||||||||||
| Stalk pith | 1.58 | 0.8248 | 0.0023 | 0.0013 | 26.88 | ||||||||||
| Cob shell | 1.58 | 0.7389 | 0.0018 | 0.0006 | 25.47 | ||||||||||
| Whole stover | 1.54 | 0.7144 | 0.0025 | 0.0012 | 25.05 |
Formulas giving stoichiometric coefficients for the plant growth reactions.
| Substance | Stoichiometric coefficient |
| CO2 (g) | –n |
| H2O (l) | –½ (n |
| NH4+ (aq) | –n |
| H2PO4– (aq) | –n |
| SO42– (aq) | –n |
| K+ (aq) | –n |
| Mg2+ (aq) | –n |
| Ca2+ (aq) | –n |
| Al3+ (aq) | –n |
| Si(OH)4 (s) | –n |
| Mn2+ (aq) | –n |
| Fe3+ (aq) | –n |
| Cl– (aq) | –n |
| O2 (g) | – |
| H+ (aq) | –(n |
| Bio | +1 |
Thermodynamic properties of live matter of the analyzed plants.
| Plant name | Plant part | Δ | Δ | ||
| Stalk | –158.1 ± 2.8 | 38.1 ± 7.5 | –108.7 ± 5.0 | 35.3 ± 3.4 | |
| Straw | –116 ± 11 | 36.1 ± 7.1 | –69 ± 11 | 33.9 ± 3.3 | |
| Waste 1 | –187 ± 25 | 41.4 ± 8.1 | –133 ± 25 | 38.3 ± 3.7 | |
| Waste 2 | –198 ± 22 | 37.8 ± 7.4 | –149 ± 23 | 35.3 ± 3.4 | |
| Bagasse | –156.2 ± 2.7 | 36.1 ± 7.1 | –109.5 ± 4.7 | 34.0 ± 3.3 | |
| Leaves | –211 ± 25 | 37.8 ± 7.5 | –162 ± 25 | 36.0 ± 3.5 | |
| Stems | –171 ± 24 | 35.0 ± 6.9 | –125 ± 25 | 33.5 ± 3.2 | |
| Grain | –180 ± 26 | 39.1 ± 7.7 | –129 ± 26 | 36.1 ± 3.5 | |
| Roots | –227 ± 24 | 36.4 ± 7.2 | –180 ± 25 | 35.3 ± 3.4 | |
| Cobs 1 | –182 ± 25 | 36.3 ± 7.2 | –135 ± 25 | 34.4 ± 3.3 | |
| Average | –189 ± 25 | 37.3 ± 7.3 | –141 ± 25 | 35.2 ± 3.4 | |
| Stalk | –158.8 ± 2.8 | 37.4 ± 7.4 | –110.4 ± 4.9 | 35.0 ± 3.4 | |
| Cobs 2 | –159.2 ± 2.8 | 38.1 ± 7.5 | –109.9 ± 4.9 | 35.3 ± 3.4 | |
| Ground stover | –182 ± 24 | 37.2 ± 7.3 | –133 ± 24.6 | 34.6 ± 3.3 | |
| Stalk shell | –158 ± 25 | 33.9 ± 6.7 | –114 ± 24.9 | 32.4 ± 3.1 | |
| Stalk pith | –182 ± 23 | 36.2 ± 7.1 | –135 ± 23.8 | 34.0 ± 3.3 | |
| Cob shell | –163 ± 24 | 34.5 ± 6.8 | –118 ± 25 | 32.8 ± 3.1 | |
| Whole stover | –156 ± 25 | 33.6 ± 6.6 | –113 ± 25 | 32.2 ± 3.1 |
FIGURE 1Comparison of thermodynamic properties of formation of live matter: (A) standard enthalpy of formation, Δ0; (B) standard molar entropy, S0; (C) standard Gibbs energy of formation Δ0. The columns represent the average thermodynamic parameters for the organism groups, while the error bars show the spread in thermodynamic properties within the groups. Data for bacteria, fungi, and algae taken from Popovic (2019). Data for human tissues taken from Popovic and Minceva (2020c). Data for viruses are taken from (Popovic and Minceva, 2020a,b).
Thermodynamic properties of biosynthesis of the analyzed plants: standard enthalpy (Δ0), entropy (Δ0), and Gibbs energy (Δ0) of biosynthesis.
| Plant name | Plant part | Δ | Δ | Δ |
| Stalk | 466.1 ± 2.8 | –35.0 ± 7.5 | 476.5 ± 5.0 | |
| Straw | 506 ± 11 | –29.0 ± 7.1 | 515 ± 11 | |
| Waste 1 | 421 ± 25 | –44.8 ± 8.1 | 435 ± 25 | |
| Waste 2 | 409 ± 22 | –41.9 ± 7.4 | 422 ± 23 | |
| Bagasse | 453.9 ± 2.7 | –34.7 ± 7.1 | 464.2 ± 4.7 | |
| Leaves | 454 ± 25 | –23.8 ± 7.5 | 461 ± 25 | |
| Stems | 455 ± 24 | –25.3 ± 6.9 | 462 ± 25 | |
| Grain | 474 ± 26 | –22.3 ± 7.7 | 480 ± 26 | |
| Roots | 450 ± 24 | –16.3 ± 7.2 | 455 ± 25 | |
| Cobs 1 | 455 ± 25 | –24.3 ± 7.2 | 462 ± 25 | |
| Average | 460 ± 25 | –23.2 ± 7.3 | 467 ± 25 | |
| Stalk | 448.5 ± 2.8 | –40.0 ± 7.4 | 460.3 ± 4.9 | |
| Cobs 2 | 465.6 ± 2.8 | –34.4 ± 7.5 | 475.8 ± 4.9 | |
| Ground stover | 450 ± 24 | –27.9 ± 7.3 | 458 ± 25 | |
| Stalk shell | 459 ± 25 | –22.5 ± 6.7 | 466 ± 25 | |
| Stalk pith | 437 ± 23 | –31.0 ± 7.1 | 447 ± 24 | |
| Cob shell | 456 ± 24 | –24.1 ± 6.8 | 463 ± 25 | |
| Whole stover | 457 ± 25 | –23.2 ± 6.6 | 464 ± 25 |
FIGURE 2Distribution of energy in photosynthesis. (A) Total energy of the sun is partly not in the photosynthetic 400–700 nm region and is partly reflected, absorbed, or transmitted by leaves. The remaining energy is used in photosynthesis and is called intercepted photosynthetic energy (q, shown in orange). (B) Intercepted photosynthetic energy is not the actual energy used by the plant. A part is lost due to quantum efficiency requirements, in conversion to glucose, and in dark and photorespiration. The remaining energy is usable photosynthetic energy (Δ, shown in orange). (C) Usable photosynthetic energy is used partly to provide energy for biosynthesis (Δ) and partly dissipated to make growth occur at a desired rate (Δ).
Photosynthetic energy and driving force of growth.
| Plant name | Δ | Δ | Δ | ||
| 1.6 ± 1.5 | 17.0 ± 15.1 | –2.5 ± 2.3 | +0.476 ± 0.005 | –2.1 ± 2.3 | |
| 2.0 ± 0.4 | 13.5 ± 3.0 | –2.0 ± 0.4 | +0.515 ± 0.011 | –1.5 ± 0.4 | |
| 1.9 ± 0.4 | 16.0 ± 3.0 | –2.4 ± 0.5 | +0.428 ± 0.025 | –2.0 ± 0.5 | |
| 1.4 ± 0.7 | 19.4 ± 9.5 | –2.9 ± 1.4 | +0.464 ± 0.005 | –2.4 ± 1.4 | |
| 2.3 ± 1.9 | 11.7 ± 9.7 | –1.8 ± 1.5 | +0.463 ± 0.026 | –1.3 ± 1.5 |
FIGURE 3Plant growth curves. The blue circles () represent experimental data, while the orange lines () represent a fit made with the three-phase linear model (Equation 25). Experimental data sources: (A–C) from Shi et al. (2013) and (D) from Koca and Erekul (2016).
Growth rates, r, and phenomenological L coefficients of the analyzed plants.
| Plant and growth location | ||||
| 27.87 | 2.75 | 0.0987 | 14 ± 16 | |
| 29.68 | 0.260 | 0.00877 | 1.3 ± 0.3 | |
| 26.94 | 8.17 | 0.303 | 70 ± 78 | |
| 26.94 | 25.76 | 0.9560 | 220 ± 250 |