PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 14, 2026Langmuir2 citations

Amphoteric Polyelectrolyte Biosilica Scaffolds: Effective Adsorbents for Pollutant Removal

View Full Paper
UJUpendra A. JoshiPSP. Gursumeeran Satsangi

Key Points

  • The aim is to develop an amphoteric polyelectrolyte scaffold for efficient pollutant removal from wastewater.
  • Designed an amphoteric polyelectrolyte scaffold using chitosan, alginate, and biosilica.
  • Evaluated adsorption capacity for cationic and anionic pollutants across different pH levels.
  • Tested the scaffold's reusability through consecutive regeneration cycles.
  • ACS-4B achieved maximum adsorption capacities of 630 mg/g for methylene blue and 587 mg/g for chromium (Cr<sup>6+</sup>).
  • Effective adsorption occurred without pH adjustments over a wide pH range.
  • The scaffold retained functionality after four regeneration cycles.

Abstract

Rice husk-derived silica nanoparticles (RSN-50) possess an inherently negative surface charge over a wide pH range, which limits their effectiveness for the removal of chemically diverse pollutants. To overcome this dominant charge limitation, an amphoteric polyelectrolyte scaffold (ACS-4B) composed of chitosan (CS), alginate (Alg), and biosilica was designed to enable pH-responsive surface charge regulation using complementary functional groups (-COOH, -NH3+, and -SiOH). ACS-4B demonstrated efficient adsorption of cationic dye (methylene blue, MB), anionic dye (Congo red, CR), and toxic metal ions (Pb2+ and Cr6+) across a wide pH range without pH adjustment. Mesoporous ACS-4B scaffolds with a specific surface area (233.2 m2/g) could achieve maximum adsorption capacity for MB (630 mg/g), CR (387 mg/g), Pb2+ (539 mg/g), and Cr6+ (585 mg/g) within 150 min at the inherent solution pH, indicating the pH-responsive amphoteric behavior of ACS-4B (CR (6.7), MB (5.9), Pb2+ (2.9), and Cr6+ (4.9)). The selective adsorption trends under mixed-pollutant conditions further reflect charge-adaptive interactions. ACS-4B retained its adsorption functionality over four consecutive regeneration cycles, indicating preliminary reusability. The combined amphoteric surface chemistry, inherent postadsorption pH-buffering ability, and biowaste-derived design highlight ACS-4B as a promising adsorbent for textile dye and metal-containing wastewater treatment.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Joshi et al. (2026) studied this question.

synapsesocial.com/papers/69b4fbf9b39f7826a300c7adhttps://doi.org/10.1021/acs.langmuir.5c06197
Ask AI
Helpful
Bookmark
Share
View Full Paper