Lecture 2 Video 2
🌟 Nucleophilicity vs. Basicity — Same Electrons, Different Questions
This lecture tackles a classic source of confusion in organic chemistry: 👉 If nucleophiles donate electrons and bases donate electrons… why aren’t they the same thing?
Short answer: they measure different things. Long answer: let’s break it down properly.
🔁 SN2 Reactions: Where the Confusion Starts
In an SN2 reaction:
- A nucleophile has an extra electron pair (often a negative charge).
- It attacks a partially positive carbon.
- The leaving group, being more electronegative, takes electrons and leaves.
So the nucleophile:
- Donates electrons
- Forms a bond
- Acts as a Lewis base
🔑 Key refresher: A Lewis base is anything that donates an electron pair.
👉 So yes — every nucleophile is acting as a Lewis base in this context.
This raises the obvious question:
🤔 Why did chemists invent two words if the same electrons are involved?
⚡ The Core Distinction: Kinetics vs. Thermodynamics
🏃♂️ Nucleophilicity = How fast does it react?
- Kinetic concept
- Measures:
- How easily a species reacts
- How quickly it can attack
- How low the activation energy is
- Says nothing about how strong or stable the final bond is
📌 Think: “How good is it at getting the reaction to happen?”
🏔️ Basicity = How much does it want to react?
- Thermodynamic concept
- Measures:
- Stability of reactants vs. products
- Strength of the bond formed
- Independent of reaction speed
📌 Think: “How happy will it be after reacting?”
🧪 Example: Fluoride vs. Iodide (The Classic Trap)
🔹 Basicity Trend (Always the Same)
Basicity is intrinsic — it does not depend on solvent.
Strongest → Weakest base:
OH⁻ > Cl⁻ > Br⁻ > I⁻
- Fluoride forms stronger bonds
- It is less stable as an anion
- So it wants to react more → stronger base
🔹 Nucleophilicity in Protic Solvents (e.g. water)
A protic solvent contains hydrogen atoms that can hydrogen-bond.
Here’s what happens:
- Small, hard anions (like F⁻):
- Form tight hydrogen-bonded shells
- Are “wrapped up” by solvent
- Harder to reach the carbon
- Large, soft anions (like I⁻):
- Weakly solvated
- More polarizable
- Can attack more easily
Nucleophilicity in protic solvent:
I⁻ > OH⁻ > F⁻
💡 Even though fluoride is a stronger base, it is a worse nucleophile here.
🧊 Nucleophilicity in Aprotic Solvents
In aprotic solvents:
- No strong hydrogen bonding
- Solvent interference is minimal
👉 Now basicity and nucleophilicity correlate
Trend:
OH⁻ > F⁻ > I⁻
📌 Stronger base → better nucleophile (because nothing is blocking the attack)
💥 Why Hydroxide Is Special
Hydroxide (OH⁻) is a consistently strong nucleophile because:
- It has an extra electron pair
- Oxygen is highly electronegative
- The negative charge is very reactive
Even in protic solvents:
- It may be partially solvated
- But it is still reactive enough to attack effectively
Take solvent away → it becomes extremely nucleophilic.
🚧 The Missing Piece: Steric Hindrance
Nucleophilicity is not just about charge or basicity.
Consider two nucleophiles:
- One small and compact
- One bulky, surrounded by large groups
Even if:
- The reactive atom is the same
- The basicity is similar
👉 The bulky nucleophile reacts more slowly because:
- It physically struggles to reach the electrophile
- Its electron pair is sterically blocked
📌 Steric hindrance affects nucleophilicity, not basicity
This is why the statement:
“In aprotic solvents, nucleophilicity and basicity correlate”
comes with an asterisk ⭐ (sterics can still break the trend).
🧠 Final Take-Home Summary
✅ Nucleophilicity
- Kinetic
- How fast / how easily it reacts
- Depends on:
- Solvent
- Size
- Polarizability
- Steric hindrance
✅ Basicity
- Thermodynamic
- How strong the resulting bond is
- How badly it wants to react
- Independent of solvent
🧾 One-line memory trick:
Nucleophilicity = speed ⚡ Basicity = desire + bond strength 🏔️