Ambient-Dried Cellulose Nanofibril/H2TiO3 Composite Aerogel for Enhanced Lithium Capture at Seawater-Relevant pH

Efficient seawater lithium harvesting requires adsorbents combining high selectivity with scalable, low-energy fabrication. Although H2TiO3 lithium-ion sieves (HTO-LIS) exhibit exceptional Li+ selectivity, their deployment is hindered by strict alkaline requirements and reliance on energy-intensive shaping processes such as freeze-drying. Herein, we report a cellulose nanofibril (CNF) composite aerogel addressing both challenges simultaneously. Ammonium phytate (AP), a bio-derived polyphosphate, serves a dual function: as a green crosslinker for CNF and as an in situ alkalinity generator, creating a localized alkaline microenvironment around immobilized HTO nanoparticles that enables efficient topotactic H+/Li+ exchange at seawater-relevant pH 8 without requiring strongly alkaline bulk conditions. Crucially, the AP-crosslinked CNF skeleton withstands capillary forces during ambient-pressure drying, preserving a hierarchical macroporous network without freeze-drying. The resulting AP-CNF@HTO monolith achieves a Li+ capacity of 19.08 mg g−1 at pH 8, a 128.9% enhancement over pristine HTO, with excellent selectivity against competing ions in real seawater and 88.3% capacity retention after ten cycles. This work demonstrates that rational bio-based crosslinker selection can concurrently solve the alkaline microenvironment and ambient-drying challenges of HTO-LIS composites, offering an ambient-pressure-drying route with reduced reliance on energy-intensive freeze-drying for seawater lithium enrichment.

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Publication Details

Journal
Gels
Published
2026-09-28
DOI
https://doi.org/10.3390/gels12100873
Primary Topic
Extraction and Separation Processes
Type
article
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article

Ambient-Dried Cellulose Nanofibril/H2TiO3 Composite Aerogel for Enhanced Lithium Capture at Seawater-Relevant pH

Daxin Liang, Jing Wang, Yimin Shi, Xueqiao Wang et al.
Gels
Extraction and Separation Processes
article

Ambient-Dried Cellulose Nanofibril/H2TiO3 Composite Aerogel for Enhanced Lithium Capture at Seawater-Relevant pH

Daxin Liang, Jing Wang, Yimin Shi, Xueqiao Wang, Ruimeng Liu, Wenxuan Wang
article en

Abstract

Efficient seawater lithium harvesting requires adsorbents combining high selectivity with scalable, low-energy fabrication. Although H2TiO3 lithium-ion sieves (HTO-LIS) exhibit exceptional Li+ selectivity, their deployment is hindered by strict alkaline requirements and reliance on energy-intensive shaping processes such as freeze-drying. Herein, we report a cellulose nanofibril (CNF) composite aerogel addressing both challenges simultaneously. Ammonium phytate (AP), a bio-derived polyphosphate, serves a dual function: as a green crosslinker for CNF and as an in situ alkalinity generator, creating a localized alkaline microenvironment around immobilized HTO nanoparticles that enables efficient topotactic H+/Li+ exchange at seawater-relevant pH 8 without requiring strongly alkaline bulk conditions. Crucially, the AP-crosslinked CNF skeleton withstands capillary forces during ambient-pressure drying, preserving a hierarchical macroporous network without freeze-drying. The resulting AP-CNF@HTO monolith achieves a Li+ capacity of 19.08 mg g−1 at pH 8, a 128.9% enhancement over pristine HTO, with excellent selectivity against competing ions in real seawater and 88.3% capacity retention after ten cycles. This work demonstrates that rational bio-based crosslinker selection can concurrently solve the alkaline microenvironment and ambient-drying challenges of HTO-LIS composites, offering an ambient-pressure-drying route with reduced reliance on energy-intensive freeze-drying for seawater lithium enrichment.

GelsVol. 12(10)
Jiamusi University (CN), Harbin Institute of Technology (CN), Northeast Forestry University (CN)
Openalex Percentile: Top 21%
Extraction and Separation Processes
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Ambient-Dried Cellulose Nanofibril/H2TiO3 Composite Aerogel for Enhanced Lithium Capture at Seawater-Relevant pH — Daxin Liang, Jing Wang, et al. · Gels (2026) | TGRS Research Map | TGRS