TA4401CT TOSHIBA | Alldatasheet
Document overview
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Technical content
Features
- Single voltage operation : V CC = 3.0 V (typ.) for PHS : V CC = 3.3 V (typ.) for IEEE802.11g
- Large output power : Pout = 22.5 dBmW (min.) for PHS : Pout = 18 dBmW (min.) for IEEE802.11g
- High power gain : Gp = 35 dB (typ.) for PHS : Gp = 27.5 dB (typ.) for IEEE802.11g
- Nano-amp shutdown mode : ICC_OFF = 20 nA (typ.) when VCON = 0 V
- Small package : CST16 (CSON16-P-0303-0.50) package Absolute Maximum Ratings (Ta = 25°C) Characteristic Symbol Rating Unit VCC (Note 1) 3.6 V Supply voltage VCON (Note 2) 3.6 V Input power Pin –3 dBmW Power dissipation Pd (Note 3) 1 W Operating temperature range Topr –40 to +85 ˚C Storage temperature range Tstg –55 to +150 ˚C Note: Using continuously under heavy loads (e.g. the application of high temperature/current/voltage and the significant change in temperature, etc.) may cause this product to decrease in the reliability significantly even if the operating conditions (i.e. operating temperature/current/voltage, etc.) are within the absolute maximum ratings and the operating ranges. Please design the appropriate reliability upon reviewing the Toshiba Semiconductor Reliability Handbook (“Handling Precautions”/“Derating Concept and Methods”) and individual reliability data (i.e. reliability test report and estimated failure rate, etc). Note 1: V CC = VCC1 = VCC2 = VCC3 Note 2: V CON = VCON12 = VCON3 Note 3: When mounted on 30 mm × 35 mm × 0.4 mm FR4 s ubstrate at Ta = 25°C (double-sided substrate: the reverse side is the ground connection.) Caution This device is sensitive to electrostatic discharge. When handling this product, ensure that the environment is protected against electrostatic discharge by using an earth strap, a conductive mat and an ionizer. Weight: 0.012 g (typ.)
Electrical Characteristics (22.5 dBmW for PHS) V CC = 3 V, VCON = 2.7 V, f = 1.92 GHz, Ta = 25 °C, Zs = Zl = 50 Ω, unless otherwise noted. Characteristic Symbol Test Condition Min Typ Max Unit Operating frequency f ⎯ 1.880 ⎯ 1.920 GHz Operating supply voltage VCC ⎯ 2.7 3.0 3.3 V Shutdown mode leakage current I CC_OFF V CON = 0 V, No RF input (Pin = 0 mW) ⎯ 20 ⎯ nA Supply current ICC ⎯ 200 225 mA Control current ICON ⎯ 4 6 mA Power gain Gp 384-kbps π/4-QPSK modulated signal, P o u t = 2 2 . 5 d B m W , Pin = adjusted (Pin1) 32 35 ⎯ dB ACPR1 Δf = 600 kHz ⎯ −65 −55 dB Adjacent channel leakage power ratio ACPR2 Δf = 900 kHz ⎯ −70 −60 dB 2fo ⎯ −45 −30 dB Harmonics 3fo ⎯ −60 −30 dB Output deviation | ΔPout | 384-kbps π/4-QPSK modulated signal, f = 1880, 1920 MHz, Pin = Pin1 ⎯ 0.5 1 dB Input VSWR VSWRin CW signal, Pin = -30 dBmW ⎯ 1.5 2.5 ⎯ Stability ⎯ VCC = 3.0 ~ 3.6 V, VCON = 2.7 V, Pout = 22.5 dBmW @ Zl = 50 Ω, Pin = adjusted, Zs = 50 Ω, VSWR Load = 6:1 all phases, Ta = -40 ~ +85˚C No spurious ⎯ Load mismatch ⎯ VCC = 3.6 V, VCON = 2.7 V, Pin = -6 dBmW, Zs = 50 Ω, VSWR Load = 6:1 all phases No degradation ⎯ Note 4: ICON = ICON12 + ICON3 Note 5: Load condition for stability and load mismatch tests is formed with appropriate short stab connected to POUT (Pin No.10) and adjusted to all phases. Note 6: All tests for the above electrical characteristics are measured using “Test Board 1”, shown below. Note 7: 1/2 duty operation. Typical Electrical Characteristics for Reference 1 (21 dBmW for PHS) VCC = 3 V, VCON = 2.7 V, f = 1.92 GHz, Ta = 25 °C, Zs = Zl = 50 Ω, unless otherwise noted. Characteristic Symbol Test Condition Typ Unit Supply current ICC 185 mA Power gain Gp 384-kbps π/4-QPSK modulated signal, Pout = 21 dBmW, Pin = adjusted 36 dB ACPR1 Δf = 600 kHz −70 dB Adjacent channel leakage power ratio ACPR2 Δf = 900 kHz −75 dB 2fo −45 dB Harmonics 3fo −60 dB Note 8: All tests for the above typical electrical characteristics are measured using “Test Board 1”, shown below.
Typical Electrical Characteristics for Reference 2 (18 dBmW for IEEE802.11g) Characteristic Symbol Test Condition Typ Unit Operating frequency f ⎯ 2.45 GHz Operating supply voltage V CC ⎯ 3.3 V Shutdown mode leakage current ICC_OFF V CON = 0 V, No RF input (Pin = 0 mW) 20 nA Supply current ICC 125 mA Control current ICON 3 mA Power gain Gp 27.5 dB Error vector magnitude EVM 54-Mbps 64QAM OFDM framed signal, Pout = 18 dBmW (when unframed), Pin = adjusted 3 % ACPR1 Δf = 20 MHz −37 dB Adjacent channel leakage power ratio ACPR2 Δf = 40 MHz 54-Mbps 64QAM OFDM unframed signal, Pout = 18 dBmW, Pin = adjusted −55 dB 2fo −48 dB Harmonics 3fo CW signal, Pout = 18 dBmW, Pin = adjusted −55 dB Note9: All tests for the above typical electrical characteristics are measured using “Test Board 2”, shown below.
Block Diagram and Marking (Top View) Pin Description Number of pin Name of pin Description 1 NC Not connected to the pellet. Please connect to ground. 2 P IN RF input. DC block capacitor is built in. 3 NC Not connected to the pellet. Please connect to ground. 4 NC Not connected to the pellet. Please connect to ground.
5 V CON12 Control pin of 1
stage amplifiers. 6 NC Not connected to the pellet. Please connect to ground.
7 V CON3 Control pin of 3
stage amplifier. 8 NC Not connected to the pellet. Please connect to ground. 9 NC Not connected to the pellet. Please connect to ground.
10 V CC3/POUT Supply pin of 3
stage amplifier/RF output pin. 11 NC Not connected to the pellet. Please connect to ground. 12 NC Not connected to the pellet. Please connect to ground. 13 NC Not connected to the pellet. Please connect to ground.
14 V CC2 Supply pin of 2
stage amplifier. 15 NC Not connected to the pellet. Please connect to ground.
16 V CC1 Supply pin of 1
stage amplifier. − GND_Bed Ground. This pin also works as heat dissipation pad. 5 8 Pin 1 marking Product name Lot No. 4401
Circuit Diagram for PHS Application (Test Board 1) List of External Components Part Number Value Chip Series Manufacturer Description C1 0.1 uF GRM15 series M URATA Decoupling capacitor C2 0.1 uF GRM15 series MURATA Decoupling capacitor C3 1.5 pF GRM15 series MURATA Harmonics reduction capacitor C4 0.1 uF GRM15 series MURATA Decoupling capacitor C5 10 pF GRM15 series MURATA DC blocking capacitor C6 2 pF GRM15 series MURATA PA output matching C7 0.1 uF GRM15 series MURATA Decoupling capacitor C8 10 uF GRM21 series MURATA Decoupling capacitor L1 3 nH LQG15HN series MURATA PA input matching L2 1 nH LQG15HN series MURATA PA matching L3 27 nH LQG15HN series MURATA PA output matching L4 2 nH LQG15HN series MURATA PA output matching R1 51 Ω MCR01 series ROHM V CON buffering resistor S1 - - - Micro-strip line (length = 1.2 mm, width = 0.4 mm) RF-OUTPUT RF-INPUT C2 VCC =3.0V VCON =2.7V
Circuit Diagram for 2.45-GHz Wireless LAN Application (Test Board 2) List of External Components Part Number Value Chip Series Manufacturer Description C1 0.1 uF GRM15 series M URATA Decoupling capacitor C2 0.1 uF GRM15 series MURATA Decoupling capacitor C3 1.5 pF GRM15 series MURATA Harmonics reduction capacitor C4 0.1 uF GRM15 series MURATA Decoupling capacitor C5 10 pF GRM15 series MURATA DC blocking capacitor C6 1 pF GRM15 series MURATA PA output matching C7 0.1 uF GRM15 series MURATA Decoupling capacitor C8 10 uF GRM21 series MURATA Decoupling capacitor C9 0.1 uF GRM15 series MURATA Decoupling capacitor L1 2 nH LQG15HN series MURATA PA input matching L2 27 nH LQG15HN series MURATA PA output matching L3 1 nH LQG15HN series MURATA PA output matching R1 10 Ω MCR01 series ROHM PA input matching S1 - - - Micro-strip line (length = 2 mm, width = 0.4 mm) RF-INPUT C2 VCC = 3.3V VCON3 = 1.7V RF-OUTPUT VCON12 = 2.5V
Typical Operating Characteristics of Test Board 1 (PHS) Pout, ACPR, Icc - Pin Vcc = 3 V, Vcon = 2.7 V, f = 1.92 GHz, Ta = 25 °C -20 -15 -10 -35 -30 -25 -20 -15 -10 -5 0 Pin ( dBmW) Pout (dBmW) -160 -140 -120 -100 -80 -60 -40 -20 ACPR (dB) Pout (dBmW) Icc (mA) ACPR1 (dB) ACPR2 (dB) 220 200 180 160 ICC (mA) Gp, ACPR, Icc - Vcon Pout = 22.5 dBmW, Vcc = 3 V, f = 1.92 GHz, Ta = 25 °C Vcon (V) Gp (dB) -180 -160 -140 -120 -100 -80 -60 -40 -20 ACPR (dB) Gp (dB) Icc (mA) ACPR1 (dB) ACPR2 (dB) 220 200 180 160 ICC (mA) Temperature Characteristics Pout = 22.5 dBmW, Vcc = 3 V, Vcon = 2.7 V, f = 1.92 GHz -60 -40 -20 0 20 40 60 80 100 Ta (°C) Gp (dB) -180 -160 -140 -120 -100 -80 -60 -40 -20 ACPR (dB) Gp (dB) Icc (mA) ACPR1 (dB) ACPR2 (dB) 220 200 180 160 ICC (mA)
Typical Operating Characteristics of Test Board 2 (IEEE802.11g) Continuous Wave Vcc = 3.3 V, f = 2.45 GHz, Ta = 25 °C -35 -25 -15 -5 5 Pin ( dBmW) Pout (dBmW), Gp (dB) 100 150 200 250 300 350 Icc (mA) Pout (dBmW) Gp (dB) Icc (mA) 54Mbps 64QAM-OFDM Unframed Vcc = 3.3 V, f = 2.45 GHz, Ta = 25 °C 27.2 27.4 27.6 27.8 28.2 28.4 16.5 17 17.5 18 18.5 19 19.5 Pout ( dBmW) Gp (dB) -70 -60 -50 -40 -30 -20 -10 ACPR, 2fo (dB) Gp (dB) ACPR1 (dB) ACPR2 (dB) 2f o (dB) 54Mbps 64QAM OFDM Framed Vcc = 3.3 V, f = 2.45 GHz, Ta = 25 °C 0.5 1.5 2.5 3.5 4.5 15 16 17 18 19 20 Pout ( dBmW) EVM (%) 120 160 200 240 280 320 360 400 Icc (mA) EVM (%) Icc (mA)
The circuits and measurements contained in this document are given only in the context of examples of applications for these products. Moreover, these example application circuits are not intended for mass production, since the high-frequency characteristics (the AC characteristics) of these devices will be affected by the external components which the customer uses, by the design of the circuit and by various other conditions. It is the responsibility of the customer to design external circuits which correctly implement the intended application, and to check the characteristics of the design. TOSHIBA assume no responsibility for the integrity of customer circuit designs or applications.
Package Physical Dimensions CST16 U n i t : m m Weight: 0.012 g (typ.) +0.05 -0.045 0.01 0.48 +0.01 -0.005 0.47±0.04 ±0.03 ±0.1 ±0.1 -0.03 +0.05 +0.05 -0.03 2.9 2.9 1.5 1.3 0.575 0.05 0.25 0.4 0.5 ±0.1 ±0.1 ±0.05
RESTRICTIONS ON PRODUCT USE 20070701-EN GENERAL
- The information contained herein is subject to change without notice.
- TOSHIBA is continually working to improve the quality and reliability of its products. Nevertheless, semiconductor devices in general can malfunction or fail due to their inherent electrical sensitivity an d vulnerability to physical stress. It is the responsibility of the buyer, when utilizing TOSHIBA produc ts, to comply with the standards of safety in making a safe design for the entire system, and to avoid situations in which a malfunction or failure of such TOSHIBA products could cause loss of human life, bodily injury or damage to property. In developing your designs, please ensure that TOSHIBA products are used within specified operating ranges as set forth in the most recent TOSHIB A products specifications. Also, please keep in mind the precautions and conditions set forth in the “Handling Guide for Semiconduct or Devices,” or “TOSHIBA Semiconductor Reliability Handbook” etc.
- The TOSHIBA products listed in this document are in tended for usage in general electronics applications (computer, personal equipment, office equipment, measuring equipment, industrial robotics, domestic appliances, etc.).These TOSHIBA products are neither intended nor warranted for usage in equipment that requires extraordinarily high quality and/or reliability or a malfuncti on or failure of which may cause loss of human life or bodily injury (“Unintended Usage”). Unintended Usage incl ude atomic energy control instruments, airplane or spaceship instruments, transportation instruments, traffic signal instruments, combustion control instruments, medical instruments, all types of safety devices, et c.. Unintended Usage of TOSHIBA products listed in his document shall be made at the customer’s own risk.
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