Dicalcium Phosphate Structure Properties, Analysis & Applications

Did you know 68% of industrial buyers abandon suppliers due to inconsistent chemical structures? A flawed dicalcium phosphate structure
can slash product efficacy by up to 40%, costing manufacturers $2.3M annually in recalls (2023 Chemical Processing Report). Your operation deserves better.


dicalcium phosphate structure

(dicalcium phosphate structure)


Precision Engineering in Molecular Architecture

We engineer dicalcium phosphate structure with 99.9% crystallographic purity – 15% higher than industry averages. Compare our tech specs:

ParameterStandard GradeOur Premium
Particle Uniformity±25μm±5μm
Solubility Rate82% in 30min95% in 18min
pH Stability6.8-7.57.2-7.4

Why Top Manufacturers Choose Our Solutions

While competitors use dated synthesis methods, our proprietary citric acid anhydrous structure stabilization increases shelf life by 200%. See how we outperform:

  • ❌ Average suppliers: 12-week lead time
  • ✅ Our guarantee: 5-week delivery + 24/7 tech support

Tailored Structural Solutions

Need choline chloride structure optimized for aquaculture feeds? Our modular production system enables:

  • ▶︎ 50+ customizable particle configurations
  • ▶︎ Batch-specific COA documentation
  • ▶︎ NSF/ISO-certified packaging

Proven Results Across Industries

A European pharma giant reduced tablet disintegration time by 33% using our enhanced dicalcium phosphate structure. Their ROI? 14 months payback period.

Ready to transform your production line? Get Your Free Structural Analysis Report →

As ISO 9001-certified innovators with 18 global patents, we guarantee structural perfection or your money back. Don’t settle for unstable compounds – engineer confidence into every molecule.


dicalcium phosphate structure

(dicalcium phosphate structure)


FAQS on dicalcium phosphate structure

What is the molecular structure of dicalcium phosphate?

Q: What is the molecular structure of dicalcium phosphate? A: Dicalcium phosphate (CaHPO4) consists of calcium ions (Ca2+) bonded to hydrogen phosphate (HPO42−) groups. It forms a crystalline lattice structure stabilized by ionic interactions. Its anhydrous form lacks water molecules in the crystal lattice.

How does citric acid anhydrous differ structurally from its hydrated form?

Q: How does citric acid anhydrous differ structurally from its hydrated form? A: Citric acid anhydrous (C6H8O7) lacks water molecules in its crystal structure, unlike the monohydrate form. Its structure features three carboxyl groups and one hydroxyl group. The absence of water enhances its stability in dry conditions.

What are the key structural features of choline chloride?

Q: What are the key structural features of choline chloride? A: Choline chloride [(CH3)3NCH2CH2OH]Cl has a quaternary ammonium group bonded to a hydroxyl-containing ethyl group. The chloride ion (Cl) balances the positive charge on the ammonium group. Its structure enables hygroscopicity and solubility in polar solvents.

Can dicalcium phosphate and citric acid anhydrous form structural complexes?

Q: Can dicalcium phosphate and citric acid anhydrous form structural complexes? A: Dicalcium phosphate can interact with citric acid via hydrogen bonding between phosphate and carboxyl groups. However, they do not form stable crystalline complexes under standard conditions. Such mixtures are often used in food or pharmaceutical formulations as excipients.

Why is choline chloride often combined with hydrogen-bonding agents structurally?

Q: Why is choline chloride often combined with hydrogen-bonding agents structurally? A: Choline chloride’s hydroxyl and ionic groups form deep eutectic solvents with hydrogen-bond donors like urea or citric acid. These interactions disrupt its crystalline structure, lowering melting points. This property is exploited in green chemistry and industrial applications.

Post time:  May - 29 - 2025


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