Angka penting: 6; Terdekat, jika berjarak sama menjauhi nol
Stock concentration C₁
1mol/L
Final concentration C₂
0.1mol/L
Final volume V₂
250mL
Solvent to add
225mL
Dilution factor
10
Take 25 mL of the 1 mol/L stock and make it up to 250 mL (add 225 mL of solvent) to get 0.1 mol/L, a 10× dilution.
Stock and solvent in the final solution
Stock25 mLSolvent225 mL
Cara menghitung S
Moles of solute don't change
C1V1=C2V2=0.025mol
Any consistent concentration unit works because it cancels; the working here is in mol/L and litres.
Solve for V₁
V1=C1C2V2=1(0.1)(0.25)=0.025L
Solvent to add
V2−V1=225mL
Strictly: make up to V₂ in a volumetric flask; volumes aren't always additive.
Tentang Dilution and molarity calculator
Diluting a solution leaves the moles of solute unchanged, so C₁V₁ = C₂V₂: stock concentration times stock volume equals final concentration times final volume. Enter any three and the fourth follows, with the solvent to add and the dilution factor C₁/C₂. The other modes turn a weighed mass into molarity (n = m/M, c = n/V), % w/v and mg/L, give the mass to weigh for a target molarity, or find molality per kilogram of solvent.
The default makes 250 mL of 0.1 mol/L from a 1 mol/L stock: measure 25 mL of stock and make it up to 250 mL, a tenfold dilution.
Volumes of mixed liquids do not always add exactly, so make up to the final volume in a volumetric flask rather than adding the calculated solvent volume. The ppm figure is mg per litre of solution, which equals mg/kg only for dilute water-based solutions.
Contoh penyelesaian
250 mL of 0.1 M from a 1 M stock
Calculate
Dilution C₁V₁ = C₂V₂
Solve for
V₁
Stock concentration C₁
1
C₁ unit
mol/L
Final concentration C₂
0.1
C₂ unit
mol/L
Final volume V₂
250 mL
Stock volume V₁
25 mL
Solvent to add
225 mL
Dilution factor
10
Sumber pemeriksaan: Python 3.8 decimal: V₁ = 0.1 × 250 / 1 = 25 mL (OpenStax Chem 2e §3.3 method)
10 mL of 12 M HCl made up to 1 L
Calculate
Dilution C₁V₁ = C₂V₂
Solve for
C₂
Stock concentration C₁
12
C₁ unit
mol/L
Stock volume V₁
10 mL
C₂ unit
mol/L
Final volume V₂
1 L
Final concentration C₂
0.12 mol/L
Sumber pemeriksaan: Python 3.8 decimal: 12 × 0.010 / 1
Dilution factor 1: nothing to add
Calculate
Dilution C₁V₁ = C₂V₂
Solve for
V₁
Stock concentration C₁
0.5
C₁ unit
mol/L
Final concentration C₂
0.5
C₂ unit
mol/L
Final volume V₂
100 mL
Stock volume V₁
100 mL
Solvent to add
0 mL
Sumber pemeriksaan: C₁ = C₂ ⇒ V₁ = V₂
5.844 g NaCl in 100 mL
Calculate
Concentration from a mass
Molar mass from
Rumus
Solute formula
NaCl
Mass of solute
5.844 g
Volume of solution
100 mL
Molarity
1 mol/L
Percent w/v
5.844%
Mass concentration
58.44 g/L
Parts per million (mg/L)
58,440 ppm
Sumber pemeriksaan: Python 3.8 decimal: 5.844/58.440 g/mol/0.1 L = 1 M (NaCl = 22.990 + 35.45)
Pertanyaan
How do you use C1V1 = C2V2?
Write down the three values you know, use the same concentration unit on both sides and the same volume unit on both sides, and rearrange for the unknown. For 250 mL of 0.1 M from a 1 M stock, V₁ = C₂V₂ ÷ C₁ = 0.1 × 250 ÷ 1 = 25 mL of stock, made up to 250 mL with 225 mL of solvent. Because the units cancel, mmol/L or % work too.
What is the difference between molarity and molality?
Molarity (mol/L) is moles of solute per litre of solution; molality (mol/kg) is moles of solute per kilogram of solvent. Molality does not change with temperature because mass does not expand, which is why freezing-point and boiling-point calculations use it. For dilute water solutions the two are close: 58.44 g of NaCl in 2 kg of water is 0.5 mol/kg.
How do you calculate the mass needed to make a solution?
Multiply the target molarity by the volume in litres to get moles, then by the molar mass: m = c × V × M. For 500 mL of 0.2 M glucose (180.156 g/mol), 0.2 × 0.5 × 180.156 = 18.016 g. Dissolve it in less solvent than the final volume, then make up to the mark so the total is exactly 500 mL.
How do you convert molarity to ppm?
Multiply the molarity by the molar mass to get grams per litre, then by 1000 to get mg/L, which is ppm for dilute water solutions. A 0.001 M NaCl solution is 0.001 × 58.44 = 0.05844 g/L, or 58.44 ppm. Reading mg/L as ppm assumes a density of about 1 g/mL, so the two drift apart for concentrated or non-aqueous solutions.
What is a dilution factor?
It is the stock concentration divided by the final concentration, C₁/C₂, which equals the final volume divided by the stock volume, V₂/V₁. Making 25 mL up to 250 mL is a dilution factor of 10, often written 1:10, meaning 1 part stock in 10 parts total. Some labs write the same dilution as 1:9, meaning 1 part stock to 9 parts diluent, so check which convention a protocol uses.
Seberapa akurat “Dilution and molarity calculator”?
Akurasi bergantung pada masukan dan asumsi metode. Aritmetika desimal memakai 50 digit signifikan, tetapi perkiraan, metode numerik dan data sumber bisa kurang presisi; pembulatan yang ditampilkan tidak menghilangkan batasan itu. Contoh penyelesaian yang diperiksa dengan sumber independen: 6. Misalnya, “250 mL of 0.1 M from a 1 M stock” diperiksa dengan Python 3.8 decimal: V₁ = 0.1 × 250 / 1 = 25 mL (OpenStax Chem 2e §3.3 method).
Dari mana metode ini berasal?
OpenStax Chemistry 2e, §3.3 Molarity (dilution of solutions) and §3.4 Other units for solution concentrations; IUPAC Gold Book — amount concentration; molality.
Kalkulator ini mencakup 6 contoh perhitungan dengan jawaban dari sumber independen. Contoh tersebut dijalankan dalam rangkaian pengujian dan dapat Anda jalankan di sini juga.