Controlled Radical Polymerisation and Block Architecture
Ordinary radical polymerisation gives chains of many lengths because termination is fast and random. Holding most chains in a dormant state keeps them alive and growing together, which makes narrow distributions and block sequences possible.
What a learner can do afterwards
- Explains how a dormant-active equilibrium suppresses termination without stopping growth
- Predicts the dispersity and molar mass expected from an initiator-to-monomer ratio
- Designs a two-stage addition that produces a block copolymer and says when to add the second monomer
- Names a symptom in the data that shows control was lost partway through
1 · Read
You keep most chains resting in a dormant state and let only a few grow at once. Resting chains cannot meet and terminate, while each chain wakes in turn to add monomer. Growth goes on and termination stays rare.
Suppose you set 200 monomers per initiator and convert them fully. The average length lands near 200 units. Because the chains grew together, the lengths cluster near one value, and you read that narrow spread as control.
You build a block copolymer in two stages. You grow the first block to near full conversion, and only then do you feed the second monomer. The living ends accept the new monomer and extend into the second block. An early feed makes a tapered middle instead of a clean join.
You read lost control straight from the data. A broad distribution or a mass far from the target ratio means termination or transfer broke in. A shoulder on the peak means some chains died before the second feed.
You keep chains mostly dormant so they grow together, set length by the monomer to initiator ratio, feed the second block late, and read broad peaks as lost control.
2 · Watch
Take it off screen
Where it sits
8 questions wait behind this lesson, each with its answer explained. Every answer feeds the sky: stars light as they are learned, and dim when it is time to come back.