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Published in: Journal of Nanoparticle Research 3/2016

01-03-2016 | Research Paper

Self-assembled peptides for coating of active sulfur nanoparticles in lithium–sulfur battery

Authors: Yead Jewel, Kisoo Yoo, Jin Liu, Prashanta Dutta

Published in: Journal of Nanoparticle Research | Issue 3/2016

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Abstract

Development of lithium–sulfur (Li–S) battery is hindered by poor cyclability due to the loss of sulfur, although Li–S battery can provide high energy density. Coating of sulfur nanoparticles can help maintain active sulfur in the cathode of Li–S battery, and hence increase the cyclability. Among myriad of coating materials, synthetic peptides are very attractive because of their spontaneous self-assembly as well as electrical conductive characteristics. In this study, we explored the use of various synthetic peptides as a coating material for sulfur nanoparticles. Atomistic simulations were carried out to identify optimal peptide structure and density for coating sulfur nanoparticles. Three different peptide models, poly-proline, poly(leucine–lysine) and poly-histidine, are selected for this study based on their peptide–peptide and peptide-sulfur interactions. Simulation results show that both poly-proline and poly(leucine–lysine) can form self-assembled coating on sulfur nanoparticles (2–20 nm) in pyrrolidinone, a commonly used solvent for cathode slurry. We also studied the structural integrity of these synthetic peptides in organic [dioxolane (DOL) and dimethoxyethane (DME)] electrolyte used in Li–S battery. Both peptides show stable structures in organic electrolyte (DOL/DME) used in Li–S battery. Furthermore, the dissolution of sulfur molecules in organic electrolyte is investigated in the absence and presence of these peptide coatings. It was found that only poly(leucine–lysine)-based peptide can most effectively suppress the sulfur loss in electrolyte, suggesting its potential applications in Li–S battery as a coating material.

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Appendix
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Literature
go back to reference Andersen HC (1983) Rattle-a velocity version of the shake algorithm for molecular-dynamics calculations. J Comput Phys 52:24–34CrossRef Andersen HC (1983) Rattle-a velocity version of the shake algorithm for molecular-dynamics calculations. J Comput Phys 52:24–34CrossRef
go back to reference Aubert C, Vos MH, Mathis P, Eker APM, Brettel K (2000) Intraprotein radical transfer during photoactivation of DNA photolyase. Nature 405:586–590CrossRef Aubert C, Vos MH, Mathis P, Eker APM, Brettel K (2000) Intraprotein radical transfer during photoactivation of DNA photolyase. Nature 405:586–590CrossRef
go back to reference Bernini C, Pogni R, Ruiz-Duenas FJ, Martinez AT, Basosia R, Sinicropi A (2011) EPR parameters of amino acid radicals in P. eryngii versatile peroxidase and its W164Y variant computed at the QM/MM level. Phys Chem Chem Phy 13:5078–5098CrossRef Bernini C, Pogni R, Ruiz-Duenas FJ, Martinez AT, Basosia R, Sinicropi A (2011) EPR parameters of amino acid radicals in P. eryngii versatile peroxidase and its W164Y variant computed at the QM/MM level. Phys Chem Chem Phy 13:5078–5098CrossRef
go back to reference Best RB, Zhu X, Shim J, Lopes PEM, Mittal J, Feig M, MacKerell AD Jr (2012) Optimization of the Additive CHARMM All-atom protein force field targeting improved sampling of the backbone phi, psi and side-chain chi(1) and chi(2) dihedral angles. J Chem Theory Comput 8:3257–3273CrossRef Best RB, Zhu X, Shim J, Lopes PEM, Mittal J, Feig M, MacKerell AD Jr (2012) Optimization of the Additive CHARMM All-atom protein force field targeting improved sampling of the backbone phi, psi and side-chain chi(1) and chi(2) dihedral angles. J Chem Theory Comput 8:3257–3273CrossRef
go back to reference Bruce PG, Freunberger SA, Hardwick LJ, Tarascon JM (2012) Li-O-2 and Li–S batteries with high energy storage. Nat Mater 11:19–29CrossRef Bruce PG, Freunberger SA, Hardwick LJ, Tarascon JM (2012) Li-O-2 and Li–S batteries with high energy storage. Nat Mater 11:19–29CrossRef
go back to reference Chen H, Dong W, Ge J, Wang C, Wu X, Lu W, and Chen L (2013) Ultrafine sulfur nanoparticles in conducting polymer shell as cathode materials for high performance lithium/sulfur batteries. Scientific Reports 3 Chen H, Dong W, Ge J, Wang C, Wu X, Lu W, and Chen L (2013) Ultrafine sulfur nanoparticles in conducting polymer shell as cathode materials for high performance lithium/sulfur batteries. Scientific Reports 3
go back to reference Deligiannakis Y, Rutherford AW (2001) Electron spin echo envelope modulation spectroscopy in photosystem I. Biochim Et Biophys Acta-Bioenerg 1507:226–246CrossRef Deligiannakis Y, Rutherford AW (2001) Electron spin echo envelope modulation spectroscopy in photosystem I. Biochim Et Biophys Acta-Bioenerg 1507:226–246CrossRef
go back to reference Fairman R, Akerfeldt KS (2005) Peptides as novel smart materials. Curr Opin Struct Biol 15:453–463CrossRef Fairman R, Akerfeldt KS (2005) Peptides as novel smart materials. Curr Opin Struct Biol 15:453–463CrossRef
go back to reference Faraggi M, Defelippis MR, Klapper MH (1989) Long-range electron-transfer between tyrosine and tryptophan in peptides. J Am Chem Soc 111:5141–5145CrossRef Faraggi M, Defelippis MR, Klapper MH (1989) Long-range electron-transfer between tyrosine and tryptophan in peptides. J Am Chem Soc 111:5141–5145CrossRef
go back to reference Gao J, Mueller P, Wang M, Eckhardt S, Lauz M, Fromm KM, Giese B (2011) Electron transfer in peptides: the influence of charged amino acids. Angew Chem-Int Ed 50:1926–1930CrossRef Gao J, Mueller P, Wang M, Eckhardt S, Lauz M, Fromm KM, Giese B (2011) Electron transfer in peptides: the influence of charged amino acids. Angew Chem-Int Ed 50:1926–1930CrossRef
go back to reference Humphrey W, Dalke A, Schulten K (1996) VMD: visual molecular dynamics. J Mol Graph Model 14:33–38CrossRef Humphrey W, Dalke A, Schulten K (1996) VMD: visual molecular dynamics. J Mol Graph Model 14:33–38CrossRef
go back to reference Ji X, Lee KT, Nazar LF (2009) A highly ordered nanostructured carbon-sulphur cathode for lithium–sulphur batteries. Nat Mater 8:500–506CrossRef Ji X, Lee KT, Nazar LF (2009) A highly ordered nanostructured carbon-sulphur cathode for lithium–sulphur batteries. Nat Mater 8:500–506CrossRef
go back to reference Kitagawa K, Morita T, Kawasaki M, Kimura S (2003) Electric properties of self-assembled monolayers of helical peptides by scanning tunneling spectroscopy. J Polymer Sci Part A 41:3493–3500CrossRef Kitagawa K, Morita T, Kawasaki M, Kimura S (2003) Electric properties of self-assembled monolayers of helical peptides by scanning tunneling spectroscopy. J Polymer Sci Part A 41:3493–3500CrossRef
go back to reference Krebs C, Chen SX, Baldwin J, Ley BA, Patel U, Edmondson DE, Huynh BH, Bollinger JM (2000) Mechanism of rapid electron transfer during oxygen activation in the R2 subunit of Escherichia coli ribonucleotide reductase. 2. Evidence for and consequences of blocked electron transfer in the W48F variant. J Am Chem Soc 122:12207–12219CrossRef Krebs C, Chen SX, Baldwin J, Ley BA, Patel U, Edmondson DE, Huynh BH, Bollinger JM (2000) Mechanism of rapid electron transfer during oxygen activation in the R2 subunit of Escherichia coli ribonucleotide reductase. 2. Evidence for and consequences of blocked electron transfer in the W48F variant. J Am Chem Soc 122:12207–12219CrossRef
go back to reference Krebs MRH, Devlin GL, Donald AM (2007) Protein particulates: another generic form of protein aggregation? Biophys J 92:1336–1342CrossRef Krebs MRH, Devlin GL, Donald AM (2007) Protein particulates: another generic form of protein aggregation? Biophys J 92:1336–1342CrossRef
go back to reference Lauz M, Eckhardt S, Fromm KM, Giese B (2012) The influence of dipole moments on the mechanism of electron transfer through helical peptides. Phys Chem Chem Phys 14:13785–13788CrossRef Lauz M, Eckhardt S, Fromm KM, Giese B (2012) The influence of dipole moments on the mechanism of electron transfer through helical peptides. Phys Chem Chem Phys 14:13785–13788CrossRef
go back to reference Li W, Zheng G, Yang Y, Seh ZW, Liu N, Cui Y (2013) High-performance hollow sulfur nanostructured battery cathode through a scalable, room temperature, one-step, bottom-up approach. Proc Natl Acad Sci USA 110:7148–7153CrossRef Li W, Zheng G, Yang Y, Seh ZW, Liu N, Cui Y (2013) High-performance hollow sulfur nanostructured battery cathode through a scalable, room temperature, one-step, bottom-up approach. Proc Natl Acad Sci USA 110:7148–7153CrossRef
go back to reference Liang C, Dudney NJ, Howe JY (2009) Hierarchically structured sulfur/carbon nanocomposite material for high-energy lithium battery. Chem Mater 21:4724–4730CrossRef Liang C, Dudney NJ, Howe JY (2009) Hierarchically structured sulfur/carbon nanocomposite material for high-energy lithium battery. Chem Mater 21:4724–4730CrossRef
go back to reference Moon S, Jung YH, Jung WK, Jung DS, Choi JW, Kim DK (2013) Encapsulated monoclinic sulfur for stable cycling of Li-S rechargeable batteries. Adv Mater 25:6547–6553CrossRef Moon S, Jung YH, Jung WK, Jung DS, Choi JW, Kim DK (2013) Encapsulated monoclinic sulfur for stable cycling of Li-S rechargeable batteries. Adv Mater 25:6547–6553CrossRef
go back to reference Nalluri SKM, Shivarova N, Kanibolotsky AL, Zelzer M, Gupta S, Frederix PWJM, Skabara PJ, Gleskova H, Ulijn RV (2014) Conducting nanofibers and organogels derived from the self-assembly of tetrathiafulvalene-appended dipeptides. Langmuir 30:12429–12437CrossRef Nalluri SKM, Shivarova N, Kanibolotsky AL, Zelzer M, Gupta S, Frederix PWJM, Skabara PJ, Gleskova H, Ulijn RV (2014) Conducting nanofibers and organogels derived from the self-assembly of tetrathiafulvalene-appended dipeptides. Langmuir 30:12429–12437CrossRef
go back to reference Phillips JC, Braun R, Wang W, Gumbart J, Tajkhorshid E, Villa E, Chipot C, Skeel RD, Kale L, Schulten K (2005) Scalable molecular dynamics with NAMD. J Comput Chem 26:1781–1802CrossRef Phillips JC, Braun R, Wang W, Gumbart J, Tajkhorshid E, Villa E, Chipot C, Skeel RD, Kale L, Schulten K (2005) Scalable molecular dynamics with NAMD. J Comput Chem 26:1781–1802CrossRef
go back to reference Reece SY, Hodgkiss JM, Stubbe J, Nocera DG (2006) Proton-coupled electron transfer: the mechanistic underpinning for radical transport and catalysis in biology. Philosoph Trans R Soc B 361:1351–1364CrossRef Reece SY, Hodgkiss JM, Stubbe J, Nocera DG (2006) Proton-coupled electron transfer: the mechanistic underpinning for radical transport and catalysis in biology. Philosoph Trans R Soc B 361:1351–1364CrossRef
go back to reference Rettig SJ, Trotter J (1987) Refinement of the structure of orthorhombic sulfur, alpha-s-8. Acta Crystallogr Sect C 43:2260–2262CrossRef Rettig SJ, Trotter J (1987) Refinement of the structure of orthorhombic sulfur, alpha-s-8. Acta Crystallogr Sect C 43:2260–2262CrossRef
go back to reference Rufo CM, Moroz YS, Moroz OV, Stoehr J, Smith TA, Hu X, DeGrado WF, Korendovych IV (2014) Short peptides self-assemble to produce catalytic amyloids. Nat Chem 6:303–309CrossRef Rufo CM, Moroz YS, Moroz OV, Stoehr J, Smith TA, Hu X, DeGrado WF, Korendovych IV (2014) Short peptides self-assemble to produce catalytic amyloids. Nat Chem 6:303–309CrossRef
go back to reference Scheibel T, Parthasarathy R, Sawicki G, Lin XM, Jaeger H, Lindquist SL (2003) Conducting nanowires built by controlled self-assembly of amyloid fibers and selective metal deposition. Proc Natl Acad Sci USA 100:4527–4532CrossRef Scheibel T, Parthasarathy R, Sawicki G, Lin XM, Jaeger H, Lindquist SL (2003) Conducting nanowires built by controlled self-assembly of amyloid fibers and selective metal deposition. Proc Natl Acad Sci USA 100:4527–4532CrossRef
go back to reference Shafaat HS, Kim JE (2014) Resonance Raman Analysis of the Tryptophan Cation Radical. J Phys Chem Lett 5:3009–3014CrossRef Shafaat HS, Kim JE (2014) Resonance Raman Analysis of the Tryptophan Cation Radical. J Phys Chem Lett 5:3009–3014CrossRef
go back to reference Song M-K, Cairns EJ, Zhang Y (2013) Lithium/sulfur batteries with high specific energy: old challenges and new opportunities. Nanoscale 5:2186–2204CrossRef Song M-K, Cairns EJ, Zhang Y (2013) Lithium/sulfur batteries with high specific energy: old challenges and new opportunities. Nanoscale 5:2186–2204CrossRef
go back to reference Steudel R, Eckert B (2003) Solid sulfur allotropes. Elem Sulfur Sulfur-Rich Compd 230:1–79CrossRef Steudel R, Eckert B (2003) Solid sulfur allotropes. Elem Sulfur Sulfur-Rich Compd 230:1–79CrossRef
go back to reference Stubbe J, van der Donk WA (1998) Protein radicals in enzyme catalysis. Chem Rev 98:705–762CrossRef Stubbe J, van der Donk WA (1998) Protein radicals in enzyme catalysis. Chem Rev 98:705–762CrossRef
go back to reference Vanommeslaeghe K, MacKerell AD Jr (2012) Automation of the CHARMM General Force Field (CGenFF) I: bond perception and atom typing. J Chem Inf Model 52:3144–3154CrossRef Vanommeslaeghe K, MacKerell AD Jr (2012) Automation of the CHARMM General Force Field (CGenFF) I: bond perception and atom typing. J Chem Inf Model 52:3144–3154CrossRef
go back to reference Vanommeslaeghe K, Raman EP, MacKerell AD Jr (2012) Automation of the CHARMM general force field (CGenFF) II: assignment of bonded parameters and partial atomic charges. J Chem Inf Model 52:3155–3168CrossRef Vanommeslaeghe K, Raman EP, MacKerell AD Jr (2012) Automation of the CHARMM general force field (CGenFF) II: assignment of bonded parameters and partial atomic charges. J Chem Inf Model 52:3155–3168CrossRef
go back to reference Wallar BJ, Lipscomb JD (1996) Dioxygen activation by enzymes containing binuclear non-heme iron clusters. Chem Rev 96:2625–2657CrossRef Wallar BJ, Lipscomb JD (1996) Dioxygen activation by enzymes containing binuclear non-heme iron clusters. Chem Rev 96:2625–2657CrossRef
go back to reference Xin S, Gu L, Zhao N-H, Yin Y-X, Zhou L-J, Guo Y-G, Wan L-J (2012) Smaller sulfur molecules promise better lithium–sulfur batteries. J Am Chem Soc 134:18510–18513CrossRef Xin S, Gu L, Zhao N-H, Yin Y-X, Zhou L-J, Guo Y-G, Wan L-J (2012) Smaller sulfur molecules promise better lithium–sulfur batteries. J Am Chem Soc 134:18510–18513CrossRef
go back to reference Xiong HY, Buckwalter BL, Shieh HM, Hecht MH (1995) Periodicity of polar and nonpolar amino-acids is the major determinant of secondary structure in self-assembling oligomeric peptides. Proc Natl Acad Sci USA 92:6349–6353CrossRef Xiong HY, Buckwalter BL, Shieh HM, Hecht MH (1995) Periodicity of polar and nonpolar amino-acids is the major determinant of secondary structure in self-assembling oligomeric peptides. Proc Natl Acad Sci USA 92:6349–6353CrossRef
go back to reference Xu H, Das AK, Horie M, Shaik MS, Smith AM, Luo Y, Lu X, Collins R, Liem SY, Song A et al (2010) An investigation of the conductivity of peptide nanotube networks prepared by enzyme-triggered self-assembly. Nanoscale 2:960–966CrossRef Xu H, Das AK, Horie M, Shaik MS, Smith AM, Luo Y, Lu X, Collins R, Liem SY, Song A et al (2010) An investigation of the conductivity of peptide nanotube networks prepared by enzyme-triggered self-assembly. Nanoscale 2:960–966CrossRef
go back to reference Zhao XY, Tu JP, Lu Y, Cai JB, Zhang YJ, Wang XL, Gu CD (2013) Graphene-coated mesoporous carbon/sulfur cathode with enhanced cycling stability. Electrochim Acta 113:256–262CrossRef Zhao XY, Tu JP, Lu Y, Cai JB, Zhang YJ, Wang XL, Gu CD (2013) Graphene-coated mesoporous carbon/sulfur cathode with enhanced cycling stability. Electrochim Acta 113:256–262CrossRef
Metadata
Title
Self-assembled peptides for coating of active sulfur nanoparticles in lithium–sulfur battery
Authors
Yead Jewel
Kisoo Yoo
Jin Liu
Prashanta Dutta
Publication date
01-03-2016
Publisher
Springer Netherlands
Published in
Journal of Nanoparticle Research / Issue 3/2016
Print ISSN: 1388-0764
Electronic ISSN: 1572-896X
DOI
https://doi.org/10.1007/s11051-016-3364-7

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