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Erbium Upconversion Nanoparticles

Updated: 2026-07-15

Overview

Erbium upconversion nanoparticles (UCNPs) are a class of luminescent nanomaterials doped with erbium (Er) ions, often combined with ytterbium (Yb) as a sensitizer. They exhibit unique anti-Stokes emission, converting near-infrared (NIR) light into higher-energy visible or ultraviolet light through multi-photon processes. This property distinguishes them from conventional fluorophores and quantum dots. UCNPs are typically based on host materials like sodium yttrium fluoride (NaYF4), which provides a low-phonon-energy matrix to minimize non-radiative decay. Their exceptional photostability and minimal autofluorescence make them ideal for long-term imaging and harsh environments.

Physical and Chemical Properties

化学性质稳定碳酸钙粉 造纸油墨橡胶用 填充发泡 源头工厂灵寿县泽诚矿产品加工厂

Erbium UCNPs are characterized by their hexagonal or cubic crystal structures, depending on synthesis conditions. Particle sizes range from 10-200 nm, with smaller particles offering better dispersion but lower upconversion efficiency. Surface modifications (e.g., PEGylation or silica coating) enhance biocompatibility and solubility. Their optical properties depend heavily on Er³⁺ ion concentration (typically 2-20 mol%) and the presence of Yb³⁺ sensitizers. Emission peaks occur at 540 nm (green) and 660 nm (red), corresponding to Er³⁺ transitions. Unlike quantum dots, UCNPs show negligible blinking and photobleaching, with lifetimes in the microsecond to millisecond range.

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Main Applications

In biomedicine, Er-UCNPs enable deep-tissue imaging due to NIR excitation penetrating biological tissues effectively. They serve as contrast agents for cancer detection and are explored for photodynamic therapy by activating photosensitizers. Their non-photobleaching nature suits long-term cell tracking. Beyond healthcare, UCNPs are used in anti-counterfeiting inks for banknotes and luxury goods, as their emission is difficult to replicate. In energy, they enhance solar cell efficiency by converting unused NIR light into visible light. Sensors leveraging UCNPs detect environmental pollutants or biochemical markers with high specificity.

Safety and Storage

水溶核壳上转换纳米颗粒NaYF4,Yb,Er@NaYF4,Yb,Nd绿光 808激发/新乔生物杭州新乔生物科技有限公司

While Er-UCNPs are generally low-toxicity, their long-term biological impact requires case-by-case evaluation. Surface coatings (e.g., silica) reduce potential cytotoxicity. Powder forms should be handled in fume hoods to prevent inhalation, and colloidal suspensions require stabilization to avoid aggregation. Storage demands anhydrous conditions to prevent hydrolysis of fluoride-based matrices. Lyophilized powders are stable for years at room temperature if sealed, while aqueous dispersions may need refrigeration and antimicrobial additives. Always verify stability under laser irradiation for optical applications.

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B2B Procurement Guide

Procuring Er-UCNPs requires clarity on specifications: (1) Core-shell structure (e.g., NaYF4@NaYF4) improves brightness but increases cost; (2) Hydrophilic coatings (e.g., carboxyl or amine groups) are essential for biological applications; (3) Batch-to-bistency in size (±5 nm) ensures reproducible performance. Suppliers often provide custom synthesis; lead times can exceed 4 weeks. Bulk orders (100+ grams) may reduce costs by 30-50%. Validate quality via XRD for crystallinity, TEM for size distribution, and spectrophotometry for quantum yield (typically 0.1-1% for UCNPs). Demand SDS and cytotoxicity data if for biomedical use.

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