EP1633049A2

Delay locked loop circuitry for clock delay adjustment

Abstract

Delay locked loop circuitry for generating a predetermined phase relationship between a pair of clocks. A first delay-locked loop includes delay elements arranged in a chain, the chain receiving an input clock and generating, from each delay element, a set of phase vectors, each shifted a unit delay from the adjacent vector. The first delay-locked loop adjusts the unit delays in the delay chain using a delay adjustment signal so that the phase vectors span a predetermined phase shift of the input clock. A second delay-locked loop selects, from the first delay-locked loop, a pair of phase vectors which brackets the phase of an input clock. A phase interpolator receives the selected pair of vectors and generates an output clock and a delayed output clock, the amount of the delay being controlled by the delay adjustment signal of the first delay-locked loop circuitry. A phase detector compares the delayed output clock with the input clock and adjusts the phase interpolator, based on the phase comparison, so that the phase of the delayed output clock is in phase with the input clock. As a result, there is a predetermined phase relationship between the output clock and the input clock, the phase relationship being the amount of delay between the output clock and the delayed output clock. Different phase relationships between the input and output clock are possible depending on the number of unit delays used in the path of the delayed output clock or the output clock.

EP1633049A2, drawing sheet 1
Sheet 1 of 20

Term

Term ended

Projected expiry passed 4 February 2018, 8.6 years ago.

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10 claims: 5 independent, 5 dependent

  1. 1
    A delay locked loop circuit comprising:a first loop circuit (400, 320) including a first adjustable delay section (420) to provide a first clock signal (280, 430) having a controlled phase relationship with respect to an external clock signal (650, 3140);a first phase detector (590) to receive the external clock signal (650, 3140) and a first feedback clock signal (600), the first phase detector (590) to provide a signal (580) that is representative of a phase difference between the first feedback clock signal (600) and the external clock signal (650,3140);a first control circuit (570) coupled to the first phase detector (590), the first control circuit (570) to provide a plurality of control signals (550, 540) based on the signal (580) that is representative of the phase difference between the first feedback clock signal (600) and the external clock signal (650, 3140);and a selection block (562, 510, 560) coupled to the first adjustable delay section (420), the selection block (562, 510, 560) to adjust a phase of a second clock signal (615) based on the plurality of control signals (550, 540), wherein the second clock signal (615) is used to generate the first feedback clock signal (600).
  2. 5
    The delay locked loop circuit of one of the proceeding claims, wherein the first phase detector (590), first control circuit (570) and selection block (562) are included in a second loop circuit (350).
  3. 6
    A method of operation in a delay locked loop circuit, the method comprising:generating a first clock signal (280, 430) in a first loop circuit (320) such that the first clock signal (280, 430) includes a controlled phase relationship with respect to an external clock signal (650, 3140);and in a second loop circuit: comparing a phase of an external clock signal (650, 3140) to a phase of a feedback clock signal (600) to provide a signal (580) that is representative of a phase difference between the feedback clock signal (600) and the external clock signal (650, 3140);generating a plurality of control signals (550, 540) based on the signal (580) that is representative of the phase difference between the feedback clock signal (600) and the external clock signal (650, 3140);and adjusting a phase of a second clock signal (615) based on the plurality of control signals (550, 540), wherein the second clock signal (615) is used to generate the feedback clock signal (600).
  4. 9
    The method of claims 6, 7, or 8, wherein:the first clock signal (280, 430) is a first vector (285) and the method further comprises generating a plurality of phase vectors (275) in addition to the first vector (285);and adjusting the phase of the second clock signal further comprises: selecting a pair of phase vectors (520,530) of the plurality of phase vectors (275, 430) that bracket a phase of the external clock signal (650, 3140);and interpolating between the pair of phase vectors (520,530) to generate the second clock signal.
  5. 10
    An integrated circuit memory device comprising:a first loop circuit (400, 320) including a first adjustable delay section (420) to provide a first clock signal (280, 430) having a controlled phase relationship with respect to an external clock signal (650, 3140);a second loop circuit (500,350) including a selection block (562, 510, 560) coupled to the first adjustable delay section (420), the selection block (562, 510, 560) to adjust a phase of a second clock signal (615) based on a phase difference between a feedback clock signal (600) and the external clock signal (650,3140), wherein the second clock signal (615) is used to generate the feedback clock signal (600);and a transmitter circuit (3190) to output data on both edges of the second clock signal (615).