LZSP (Li3Zr3Si3PO12) Powder as Solid-State Electrolyte for Lithium-Ion Battery, 25-100 g/bottle, CLIBSSELZSP
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LZSP powder—cataloged under commercial trade labels as "Li3Zr3Si3PO12" but crystallographically defined as the solid-solution NASICON composition Li3Zr2Si2PO12 (x = 2 in the Li{1+x}Zr2SixP{3-x}O12 series)—is a lithium-ion conducting ceramic solid-state electrolyte. Its primary utility lies in providing a titanium-free, low-density NASICON framework that circumvents the rapid electrochemical reduction seen in traditional titanium-based NASICONs (such as LATP) while offering superior ambient air/moisture stability compared to garnet-type oxides (LLZO).
The primary applications in battery systems are: (1) Active Ceramic Filler in Composite Polymer Electrolytes (CPEs): Sub-micron LZSP powder (D50=~ 0.3–0.8 um) is blended at loadings of 10–40 wt% into polymer matrices such as PEO, PVDF-HFP, or poly(acrylonitrile) (PAN). It disrupts polymer chain crystallinity to promote segmental motion, provides high-mobility Lewis acid-base interfacial pathways, and reinforces mechanical stiffness against soft dendrite deformation. (2) Tape-Cast Composite Separator Films: Slurry-cast onto release liners with polymeric binders (e.g., poly(acrylic acid) or PVDF) to form ultrathin (15–30 um), flexible solid-state separator sheets. (3) Inorganic Catholyte for Composite Cathodes: Milled dry with cathode active materials (CAMs like LFP or high-Ni NMC) and conductive carbon to create continuous 3D inorganic Li+ percolation channels inside high-loading positive electrodes.
| Part Number |
CLIBSSELZSP (C-LIB-SSE-LZSP) |
| Chemical Formula |
Li3Zr3Si3PO12 |
| Appearance |
White Powder |
| Purity |
>99.9% Li2O: 8.23 wt%, La2O3: 9.63 wt%, Na2O: 3.65 wt% P2O5: 13.58 wt%, ZrO2: 40.76 wt%, SiO2: 24.05 wt% |
| Density |
~3.0-3.5 g/cm3 |
| Size Distribution |
D50 ~ 300 nm |
| Ionic Conductivity |
~3.59 x10-3 S/cm at 25 °C |
| Package Size | 25 g, 50 g, and 100 g/bottle |
Notes: Please try to store the LZSP powders in a dry place (glovebox is best).
References:
- L. Zhu, et al. Enhancing ionic conductivity in solid electrolyte by relocating diffusion ions to under-coordination sites, Science Advances, 2022, DOI: 10.1126/sciadv.abj76
- N. Zhang, et al. Slurry Casted Ultrathin Li3Zr2Si2PO12 Electrolyte Film for Solid-State Lithium Metal Batteries, Small, 2024, 20, 2402164