PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 17, 2026ChemElectroChem0 citationsOpen Access

Why and How Poly(acrylic Acid) Stabilizes and Structures Si/C Supraparticles for Li‐Ion Batteries: Unraveling PAA–Si/C Interactions From Dispersion to Electrode Integration

View Full Paper
AAAdil AminMLMoritz LoewenichMAMuhammad Ali

Key Points

  • This research aims to understand how poly(acrylic acid) interacts with silicon/carbon nanoparticles during supraparticle formation for improved battery performance.
  • Investigated the adsorption of PAA onto Si/C surfaces during dispersion.
  • Explored the effects of drying temperatures on the chemical reactions and structural properties of supraparticles.
  • Measured electrochemical performance metrics like capacity retention and Coulombic efficiency.
  • At 120°C, electrodes had a capacity retention of 1996 mAh g −1 after 100 cycles.
  • At 200°C, capacity fell to 1353 mAh g −1 after 100 cycles due to reduced compliance.
  • PAA chemistry significantly impacts electrode durability and electrochemical performance.

Abstract

In lithium‐ion battery silicon anodes, achieving reliable electrode processing, consistent electrochemical performance, and mechanically stable electrodes remains a challenge. One strategy to overcome these limitations is to assemble silicon–carbon (Si/C) nanoparticles with alloy‐like Si–C bonding into micrometer‐sized secondary particles (“supraparticles”) by spray drying. Without additives, the supraparticles are irregular and fragile; therefore, a polymeric binder is introduced to enable their controlled formation. This study establishes a foundational methodological framework to investigate the interactions of poly (acrylic acid) (PAA) with Si/C during supraparticle formation. In aqueous dispersion, PAA adsorbs onto the Si/C surface via weak hydrogen bonding. Subsequent ionization of carboxyl groups generates electrostatic repulsion between particles, stabilizing the dispersion. Upon spray drying, PAA forms a flexible, hydrogen‐bonded polymer network that crosslinks particles without covalent attachment to silanols. Drying electrodes at 120°C preserves this network, enabling volume‐change accommodation and high‐capacity retention (1996 mAh g −1 at the 100th cycle). In contrast, drying at 200°C generates PAA anhydrides and ester linkages with Si–OH groups, which reduce compliance, leading to lower Coulombic efficiency and faster fading (1353 mAh g −1 at the 100th cycle). These findings highlight binder chemistry as a key lever in designing durable Si/C electrodes.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Amin et al. (2026) studied this question.

synapsesocial.com/papers/6a095c3f7880e6d24efe2533https://doi.org/10.1002/celc.202600010
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Silicon Particle Formation by Pyrolysis of Silane in a Hot Wall Gasphase Reactor2001 · 77 citations
  2. 2Introduction to x-ray photoelectron spectroscopy2020 · 562 citations
  3. 3Comparing amorphous silica, short-range-ordered silicates and silicic acid species by FTIR2022 · 534 citations
  4. 4Poly(Acrylic acid)–Based Hybrid Inorganic–Organic Electrolytes Membrane for Electrical Double Layer Capacitors Application2016 · 89 citations
  5. 5Sedimentation Dynamics of Colloidal Formulations through Direct Visualization: Implications for Fuel Cell Catalyst Inks2020 · 42 citations